Confirmed terrestrial record cell and module efficiencies measured under the global AM 1.5 spectrum (1000 W/m2) at a cell temperature of 25°C (IEC 60904-3: 2008, ASTM G-173-03 global) [13].
-Preparation and fabrications of nanolayers with different methods.\n
-Description of recent achievements related to very important III-V heterostructures.\n
-Descriptions of mechanical, thermal, optoelectronic, photocatalytic, and tribological properties of nanolayered structures.\n
Some environmentally friendly applications are also treated in this book.\nThe presented book provides a description of specific and original results obtained by authors. We hope that the volume will be of interest for a wide range of readers working in the field of material science.",isbn:"978-953-51-3144-1",printIsbn:"978-953-51-3143-4",pdfIsbn:"978-953-51-4829-6",doi:"10.5772/65465",price:119,priceEur:129,priceUsd:155,slug:"nanoscaled-films-and-layers",numberOfPages:298,isOpenForSubmission:!1,isInWos:null,isInBkci:!1,hash:"f43ea8f3894ee0c3e44b2351bf3447d5",bookSignature:"Laszlo Nanai",publishedDate:"May 24th 2017",coverURL:"https://cdn.intechopen.com/books/images_new/5789.jpg",numberOfDownloads:19238,numberOfWosCitations:13,numberOfCrossrefCitations:15,numberOfCrossrefCitationsByBook:0,numberOfDimensionsCitations:32,numberOfDimensionsCitationsByBook:0,hasAltmetrics:0,numberOfTotalCitations:60,isAvailableForWebshopOrdering:!0,dateEndFirstStepPublish:"September 26th 2016",dateEndSecondStepPublish:"October 17th 2016",dateEndThirdStepPublish:"January 13th 2017",dateEndFourthStepPublish:"April 13th 2017",dateEndFifthStepPublish:"June 12th 2017",currentStepOfPublishingProcess:5,indexedIn:"1,2,3,4,5,6,7",editedByType:"Edited by",kuFlag:!1,featuredMarkup:null,editors:[{id:"61978",title:"Prof.",name:"Laszlo",middleName:null,surname:"Nanai",slug:"laszlo-nanai",fullName:"Laszlo Nanai",profilePictureURL:"https://mts.intechopen.com/storage/users/61978/images/system/61978.png",biography:"Prof. Nanai was born on April 19, 1948, in Csopak (Hungary). He studied physics (MSc) at Saint Petersburg State University (RU), and his PhD degree and habilitation in the field of quantum electronics were obtained at Lebedev Physical Institute, Moscow (RU), and Szeged University (H). \r\n\r\nHe is a specialist in the fields of solid-state physics, laser-matter interaction fabrication and characterization of nanostructures. He has written over 170 scientific publications including about 10 books and chapters in books and conference proceedings.",institutionString:"University of Szeged",position:null,outsideEditionCount:0,totalCites:0,totalAuthoredChapters:"2",totalChapterViews:"0",totalEditedBooks:"2",institution:{name:"University of Szeged",institutionURL:null,country:{name:"Hungary"}}}],equalEditorOne:null,equalEditorTwo:null,equalEditorThree:null,coeditorOne:null,coeditorTwo:null,coeditorThree:null,coeditorFour:null,coeditorFive:null,topics:[{id:"1169",title:"Condensed Matter Physics",slug:"nanotechnology-and-nanomaterials-material-science-condensed-matter-physics"}],chapters:[{id:"54288",title:"Formation of Nanolayer on Surface of EPD Coatings Based on Poly-Ether-Ether-Ketone",doi:"10.5772/67570",slug:"formation-of-nanolayer-on-surface-of-epd-coatings-based-on-poly-ether-ether-ketone",totalDownloads:1435,totalCrossrefCites:1,totalDimensionsCites:2,hasAltmetrics:0,abstract:"Poly-ether-ether-ketone (PEEK) is a high performance polymer with many intrinsic properties. When it is used in the form of coating, an improvement of some of its functional properties was achieved by forming a surface nanolayer. In this chapter, it will be described how it was possible to obtain this result. Firstly, three kinds of PEEK composite coatings were deposited by electrophoretic deposition, adding alumina particles, polytetrafluoroethylene (PTFE) and lignin to PEEK. Then, the composite coatings were thermal treated in a furnace. Therefore, surface nanostructure and chemical composition of these PEEK composite coatings were modified with respect to bulk coatings, due to interaction between PEEK chain and secondary phase, emphasised by the thermal treatment conditions. Experimental evidence of the formation of surface nanolayer was provided by SEM, TEM, GIXRD, ATR-FTIR and XPS characterisations. Functional characterisations demonstrated that wear resistance—in the presence of alumina particles—hydrophobicity—in the presence of PTFE—and corrosion resistance—in the presence of Lignin—were increased with respect to pure PEEK.",signatures:"Maria Federica De Riccardis",downloadPdfUrl:"/chapter/pdf-download/54288",previewPdfUrl:"/chapter/pdf-preview/54288",authors:[{id:"77857",title:"Dr.",name:"M. Federica",surname:"De Riccardis",slug:"m.-federica-de-riccardis",fullName:"M. Federica De Riccardis"}],corrections:null},{id:"54678",title:"Electroless Deposition of Nanolayered Metallic Coatings",doi:"10.5772/intechopen.68220",slug:"electroless-deposition-of-nanolayered-metallic-coatings",totalDownloads:3438,totalCrossrefCites:5,totalDimensionsCites:8,hasAltmetrics:1,abstract:"Electroless metallic coating is referred as the deposition of a substrate material by the process of chemical or autocatalytic reduction of aqueous metal ions deposited to a substrate material without any external supply of power. Electroless nickel alloys are generally considered synonymous to the word “electroless coating” as ~90% of productions in industries are of this alloy coating. Rest of the electroless metallic coatings includes gold, copper, palladium, cobalt, silver, etc. These electroless metallic coatings (other than electroless nickel coatings) are also one of the vibrant areas in the field of materials properties and surface engineering research. From the year 2000 to till date, nearly 1000 SCI indexed research papers were published on this topic. However, no comprehensive studies about the recent progress on this topic were reported elsewhere so far. In this context, the present chapter aims to give a complete overview on various aspects of the rest of the electroless metallic nanocoatings/layer as a whole. More importance will be on the recent developments of the nanocharacteristics and future scopes.",signatures:"Jothi Sudagar, Rajendraprasad Tamilarasan, Udaykumar Sanjith, Raj\nRajendran and Ravi Kumar",downloadPdfUrl:"/chapter/pdf-download/54678",previewPdfUrl:"/chapter/pdf-preview/54678",authors:[{id:"202302",title:"Dr.",name:"Jothi",surname:"Sudagar",slug:"jothi-sudagar",fullName:"Jothi Sudagar"},{id:"203599",title:"Dr.",name:"Tamilarasan",surname:"Tr",slug:"tamilarasan-tr",fullName:"Tamilarasan Tr"},{id:"203600",title:"MSc.",name:"Sanjith",surname:"U",slug:"sanjith-u",fullName:"Sanjith U"},{id:"203601",title:"Prof.",name:"Rajendran",surname:"R",slug:"rajendran-r",fullName:"Rajendran R"},{id:"203602",title:"Prof.",name:"Ravi Kumar",surname:"Nv",slug:"ravi-kumar-nv",fullName:"Ravi Kumar Nv"}],corrections:null},{id:"54328",title:"Laser Prepared Thin Films for Optoelectronic Applications",doi:"10.5772/67659",slug:"laser-prepared-thin-films-for-optoelectronic-applications",totalDownloads:1502,totalCrossrefCites:1,totalDimensionsCites:2,hasAltmetrics:0,abstract:"Laser techniques such as pulsed laser deposition, combinatorial pulsed laser deposition, and matrix-assisted pulsed laser evaporation were used to deposit thin films for optoelectronic applications. High-quality transparent conductor oxide films ITO, AZO, and IZO were deposited on polyethylene terephthalate by PLD, an important experimental parameter being the target-substrate distance. The TCO films present a high transparency (>95%) and a reduced electrical resistivity (5 × 10−4 Ωcm) characteristics very useful for their integration in the flexible electronics. InxZn1−xO films with a compositional library were obtained by CPLD. These films are featured by a high optical transmission (>95%), the lowest resistivity (8.6 × 10−4 Ωcm) being observed for an indium content of about 44–49 at.%. Organic heterostructures based on arylenevinylene oligomers (P78 and P13) or arylene polymers (AMC16 and AMC22) were obtained by MAPLE. In the case of ITO/P78/Alq3/Al heterostructures, a higher current value is obtained when the film thickness increases. Also, a photovoltaic effect was observed for heterostructures based on AMC16 or AMC22 deposited on ITO covered by a thin layer of PEDOT:PSS. Due to their optical and electrical properties, such organic heterostructures can be interesting for the organic photovoltaic cells (OPV) applications.",signatures:"Marcela Socol, Gabriel Socol, Nicoleta Preda, Anca Stanculescu and\nFlorin Stanculescu",downloadPdfUrl:"/chapter/pdf-download/54328",previewPdfUrl:"/chapter/pdf-preview/54328",authors:[{id:"21373",title:"Dr.",name:"Anca",surname:"Stanculescu",slug:"anca-stanculescu",fullName:"Anca Stanculescu"},{id:"21611",title:"Dr.",name:"Florin",surname:"Stanculescu",slug:"florin-stanculescu",fullName:"Florin Stanculescu"},{id:"178419",title:"Dr.",name:"Gabriel",surname:"Socol",slug:"gabriel-socol",fullName:"Gabriel Socol"},{id:"184343",title:"Dr.",name:"Nicoleta",surname:"Preda",slug:"nicoleta-preda",fullName:"Nicoleta Preda"},{id:"198589",title:"Dr.",name:"Marcela",surname:"Socol",slug:"marcela-socol",fullName:"Marcela Socol"}],corrections:null},{id:"54765",title:"Heteroepitaxy of III–V Zinc Blende Semiconductors on Nanopatterned Substrates",doi:"10.5772/67572",slug:"heteroepitaxy-of-iii-v-zinc-blende-semiconductors-on-nanopatterned-substrates",totalDownloads:1556,totalCrossrefCites:2,totalDimensionsCites:6,hasAltmetrics:0,abstract:"In the last decade, zinc blende structure III–V semiconductors have been increasingly utilized for the realization of high‐performance optoelectronic applications because of their tunable bandgaps, high carrier mobility and the absence of piezoelectric fields. However, the integration of III–V devices on the Si platform commonly used for CMOS electronic circuits still poses a challenge, due to the large densities of mismatch‐related defects in heteroepitaxial III–V layers grown on planar Si substrates. A promising method to obtain thin III–V layers of high crystalline quality is the growth on nanopatterned substrates. In this approach, defects can be effectively eliminated by elastic lattice relaxation in three dimensions or confined close to the substrate interface by using aspect‐ratio trapping masks. As a result, an etch pit density as low as 3.3 × 105 cm−2 and a flat surface of submicron GaAs layers have been accomplished by growth onto a SiO2 nanohole film patterned Si(001) substrate, where the threading defects are trapped at the SiO2 mask sidewalls. An open issue that remains to be resolved is to gain a better understanding of the interplay between mask shape, growth conditions and formation of coalescence defects during mask overgrowth in order to achieve thin device quality III–V layers.",signatures:"Thomas Riedl and Jörg K.N. Lindner",downloadPdfUrl:"/chapter/pdf-download/54765",previewPdfUrl:"/chapter/pdf-preview/54765",authors:[{id:"196852",title:"Dr.",name:"Thomas",surname:"Riedl",slug:"thomas-riedl",fullName:"Thomas Riedl"},{id:"197870",title:"Prof.",name:"Jörg K.N.",surname:"Lindner",slug:"jorg-k.n.-lindner",fullName:"Jörg K.N. Lindner"}],corrections:null},{id:"54687",title:"Surface Modification of III-V Compounds Substrates for Processing Technology",doi:"10.5772/67916",slug:"surface-modification-of-iii-v-compounds-substrates-for-processing-technology",totalDownloads:1968,totalCrossrefCites:1,totalDimensionsCites:2,hasAltmetrics:0,abstract:"Semiconductor materials became a part of nowadays life due to useful applications caused by characteristic properties as variable conductivity and sensitivity to light or heat. Electrical properties of a semiconductor can be modified by doping or by the application of electric fields or light; and from this view, devices made from semiconductors can be used for amplification or energy conversion. The compound semiconductor materials from III-V class experienced a qualitative leap from promising potential to nowadays technologic environment. The III-V semiconductor compounds are the material bases for electronic and optoelectronic devices such as high-electron-mobility transistors (HEMT), bipolar heterostructure transistors, IR light-emitting diodes, heterostructure lasers, Gunn diodes, Schottky devices, photodetectors, and heterostructure solar cells for terrestrial and spatial operating conditions. Among III-V semiconductor compounds, gallium arsenide (GaAs) and gallium antimonide (GaSb) are of special interest as a substrate material due to the lattice parameter match to solid solutions (ternary and quaternary) whose band gaps cover a wide spectral range from 0.8 to 4.3 μm in the case of GaSb. The solid/solid interfaces could play a key part in the development of microelectronic device technology. In most of the cases, the initial surface of III-V compounds exposed to laboratory conditions is covered usually with native oxide layers. Various techniques for performing the surface cleaning process are used, e.g., controlled chemical etching, in situ ion sputtering, coupled with controlled annealing in vacuum and often these classic techniques are combined in order to prepare an eligible semiconductor surface to be exposed to a technological device chain. The evolution of surface native oxides in different cleaning procedures and the characteristics of as-prepared semiconductor surface were investigated by modern surface investigation techniques, i.e., X-ray photoelectron spectroscopy (XPS), atomic force microscopy (AFM), Rutherford backscattering spectrometry (RBS) combined with electrical characterization. Surface preparation of semiconductors in particular for III-V compounds is a necessary requirement in device technology due to the existence of surface impurities and the presence of native oxides. The impurities can affect the adherence of ohmic and Schottky contacts and due to thermal decomposition of native oxides (e.g., GaSb) it also affect the interface metal/semiconductor. The practical experience reveals that the simple preparation of a surface is a nonrealistic expectation, i.e., surface preparation is a result of combined treatments, namely chemical etching and thermal treatment, ion beam sputtering and thermal reconstruction procedure.",signatures:"Rodica V. Ghita, Constantin Logofatu, Constantin-Catalin Negrila,\nLucian Trupina and Costel Cotirlan-Simioniuc",downloadPdfUrl:"/chapter/pdf-download/54687",previewPdfUrl:"/chapter/pdf-preview/54687",authors:[{id:"50919",title:"Dr.",name:"Rodica V.",surname:"Ghita",slug:"rodica-v.-ghita",fullName:"Rodica V. Ghita"},{id:"197743",title:"Dr.",name:"Lucian",surname:"Trupina",slug:"lucian-trupina",fullName:"Lucian Trupina"},{id:"198134",title:"Dr.",name:"Constantin",surname:"Logofatu",slug:"constantin-logofatu",fullName:"Constantin Logofatu"},{id:"198135",title:"Dr.",name:"Constantin-Catalin",surname:"Negrila",slug:"constantin-catalin-negrila",fullName:"Constantin-Catalin Negrila"},{id:"198140",title:"Dr.",name:"Costel",surname:"Cotirlan-Simioniuc",slug:"costel-cotirlan-simioniuc",fullName:"Costel Cotirlan-Simioniuc"}],corrections:null},{id:"54581",title:"Nanoscaled Fluorescent Films and Layers for Detection of Environmental Pollutants",doi:"10.5772/67869",slug:"nanoscaled-fluorescent-films-and-layers-for-detection-of-environmental-pollutants",totalDownloads:1797,totalCrossrefCites:1,totalDimensionsCites:2,hasAltmetrics:0,abstract:"Hazardous gas and ion pollutants are the most serious environmental problems around the world. It is of great importance to develop devices for easy detection of these hazardous substances. Fluorescence technology with high resolution and operational simplicity has attracted a lot of attention in recent years. Organic fluorescent dyes absorb/emit lights within a broad wavelength range, which is suitable for various demands. Chromophores, such as perylene, cyanine dyes, spiropyran, and so on, are widely studied as fluorescent probes for gases and ions. The dyes could respond to external stimuli through structural changes of the conjugated chromophore itself or the attached functional groups, leading to detectable spectral changes. Organic dyes are incorporated into nanoscaled films and layers, which are portable and durable for effective sensing in complex environments. In this chapter, preparation and application of fluorescent films and layers (FFL) for gaseous/ionic detection are reviewed. We discuss the response mechanism of fluorescent dyes, the fabrication of nanoscaled FFL, and some examples of FFL for the detection of gas and ion pollutants.",signatures:"Meizhen Yin and Chendong Ji",downloadPdfUrl:"/chapter/pdf-download/54581",previewPdfUrl:"/chapter/pdf-preview/54581",authors:[{id:"197509",title:"Prof.",name:"Meizhen",surname:"Yin",slug:"meizhen-yin",fullName:"Meizhen Yin"},{id:"200372",title:"Mr.",name:"Chendong",surname:"Ji",slug:"chendong-ji",fullName:"Chendong Ji"}],corrections:null},{id:"54290",title:"Mechanical Nanoprocessing and Nanoviscoelasticity of Surface- Modified Polycarbonate",doi:"10.5772/67512",slug:"mechanical-nanoprocessing-and-nanoviscoelasticity-of-surface-modified-polycarbonate",totalDownloads:1279,totalCrossrefCites:0,totalDimensionsCites:0,hasAltmetrics:0,abstract:"To clarify their potential as atomic force microscope (AFM) memory media, the nanometer‐scale mechanical processing properties of untreated and fluorocarbon plasma‐treated polycarbonate samples were determined via the sliding of an AFM tip. The surface energy of the polycarbonate was reduced by the fluorocarbon plasma treatment, as well as the force necessary for processing. Nanometer‐scale precise processing of the polycarbonate was realized after the fluorocarbon plasma treatment, and the interval pitch in the formation of lines, spaces, and nanometer‐scale fine dots was minimized to 60 nm with these samples. The viscoelastic properties of the fluorinated polycarbonate were evaluated using an AFM in force modulation mode. The fluorocarbon plasma treatment reduced the friction force of the polycarbonate sample and improved its wear resistance, which caused the friction durability corresponding to the reliability of data reproduction to be markedly improved. These results show that high‐density recording can be realized by nanometer‐scale processing of fluorocarbon plasma‐treated polycarbonate samples.",signatures:"Shojiro Miyake and Mei Wang",downloadPdfUrl:"/chapter/pdf-download/54290",previewPdfUrl:"/chapter/pdf-preview/54290",authors:[{id:"22097",title:"Dr.",name:"Mei",surname:"Wang",slug:"mei-wang",fullName:"Mei Wang"}],corrections:null},{id:"54966",title:"Green Intelligent Nanomaterials by Design (Using Nanoparticulate/2D-Materials Building Blocks) Current Developments and Future Trends",doi:"10.5772/intechopen.68434",slug:"green-intelligent-nanomaterials-by-design-using-nanoparticulate-2d-materials-building-blocks-current",totalDownloads:1500,totalCrossrefCites:1,totalDimensionsCites:2,hasAltmetrics:0,abstract:"Feasibility of designing and synthesizing ‘smart’ and ‘intelligent’ materials using nanostructured building blocks has been examined here based on the current status of the progress made in this context. The added advantages of using 2D layered/nonlayered materials along with phytosomal species derived from natural plants are highlighted with special reference to their better programmability along with minimum toxicity in biomedical applications. The current developments taking place in their upscaled productions are also included while assessing their upcoming industrial usages in diverse fields.",signatures:"Dinesh Kumar and Shamim Ahmad",downloadPdfUrl:"/chapter/pdf-download/54966",previewPdfUrl:"/chapter/pdf-preview/54966",authors:[{id:"196523",title:"Dr.",name:"Shamim",surname:"Ahmad",slug:"shamim-ahmad",fullName:"Shamim Ahmad"},{id:"205981",title:"Prof.",name:"Dinesh",surname:"Kumar",slug:"dinesh-kumar",fullName:"Dinesh Kumar"}],corrections:null},{id:"54751",title:"Molybdenum Disulfide-Based Photocatalysis:Bulk-to-Single Layer Structure and Related Photomechansim for Environmental Applications",doi:"10.5772/67825",slug:"molybdenum-disulfide-based-photocatalysis-bulk-to-single-layer-structure-and-related-photomechansim-",totalDownloads:2001,totalCrossrefCites:2,totalDimensionsCites:5,hasAltmetrics:0,abstract:"Bulk-to-single layer molybdenum disulfide (MoS2) is widely used as a robust candidate for photodegradation of organic pollutants, hydrogen production, and CO2 reduction. This material features active edge sites and narrow band gap features, which are useful for generating reactive species in aqueous suspensions. However, the high-charge carrier recombination, photocorrosion, unstable sulfide state, and formation of Mo-S-O links during photocatalytic reactions limit its applicability. Thus, research has focused on improving the performance of MoS2 by tailoring its bulk-to-single layer structure and combining it with other semiconductor materials to improve the photocatalytic performance. Different strategies have been successfully applied to enhance the photocatalytic activity of MoS2, including tailoring of the surface morphology, formation of heterojunctions with other semiconductors, doping, and modification with excess sulfur or carbon nanostructures. This review describes the influence of starting precursors, sulfur sources, and synthetic methods to obtain heterostructured morphologies and study their impact on the photocatalytic efficiency. Finally, the relevance of crystal facets and defects in photocatalysis is outlined. Future applications of MoS2 with tailoring and tuning physicochemical properties are highlighted.",signatures:"Surya Veerendra Prabhakar Vattikuti and Chan Byon",downloadPdfUrl:"/chapter/pdf-download/54751",previewPdfUrl:"/chapter/pdf-preview/54751",authors:[{id:"196995",title:"Prof.",name:"S V Prabhakar",surname:"Vattikuti",slug:"s-v-prabhakar-vattikuti",fullName:"S V Prabhakar Vattikuti"},{id:"199682",title:"Prof.",name:"Chan",surname:"Byon",slug:"chan-byon",fullName:"Chan Byon"}],corrections:null},{id:"54449",title:"Advance in Tribology Study of Polyelectrolyte Multilayers",doi:"10.5772/67571",slug:"advance-in-tribology-study-of-polyelectrolyte-multilayers",totalDownloads:1393,totalCrossrefCites:0,totalDimensionsCites:1,hasAltmetrics:0,abstract:"This review introduced the preparation and structural characterization of polyelectrolyte multilayers in recent years and also summarized the tribology research progress of the polyelectrolyte multilayers, including tribological properties, surface adhesion characteristics, and wear resistance properties. Statistics analysis indicated that nanoparticles‐doped polyelectrolyte multilayers present better friction and wear performance than pristine polyelectrolyte multilayers. Furthermore, the in situ growth method resulted in improved structural order of nanoparticles composite molecular deposition film. In situ nanoparticles not only reduced the molecular deposition film surface adhesion force and friction force but also significantly improved the life of wear resistance. That was due to the nanoparticles that possessed a good load‐carrying capacity and reduced the mobility of the polymer‐chain segments, which can undergo reversible shear deformation. Based on this, further research direction of in situ nanoparticles molecular deposition film was proposed.",signatures:"Yanbao Guo and Deguo Wang",downloadPdfUrl:"/chapter/pdf-download/54449",previewPdfUrl:"/chapter/pdf-preview/54449",authors:[{id:"196649",title:"Dr.",name:"Yanbao",surname:"Guo",slug:"yanbao-guo",fullName:"Yanbao Guo"},{id:"197584",title:"Prof.",name:"Deguo",surname:"Wang",slug:"deguo-wang",fullName:"Deguo Wang"}],corrections:null},{id:"54123",title:"Thermal Radiative Wavelength Selectivity of Nanostructured Layered Media",doi:"10.5772/67395",slug:"thermal-radiative-wavelength-selectivity-of-nanostructured-layered-media",totalDownloads:1370,totalCrossrefCites:1,totalDimensionsCites:2,hasAltmetrics:0,abstract:"Thermal radiative transport yields unique thermal characteristics of microscopic thin films—wavelength selectivity. This chapter focuses on a methodology about adjusting the wavelength selectivity of thin films embedded with nanoparticles in the far‐field and near‐field regimes. For nanostructured layered media doped with nanoparticles, Maxwell‐Garnett‐Mie theory is applied to determine the effective dielectric function for the calculation of radiative thermal transport. The thermal radiative wavelength selectivity can be affected by volume fraction and/or the size of the embedded nanoparticles in thin films. To characterize wavelength selectivity and optical property of nanostructured materials, both real and imaginary parts of effective refractive index need to be analyzed. It has been shown that the nanoparticles made of polar or metallic materials have different influence on thermal radiative wavelength selectivity of microscopic thin films.",signatures:"Yi Zheng",downloadPdfUrl:"/chapter/pdf-download/54123",previewPdfUrl:"/chapter/pdf-preview/54123",authors:[{id:"197058",title:"Prof.",name:"Yi",surname:"Zheng",slug:"yi-zheng",fullName:"Yi Zheng"}],corrections:null}],productType:{id:"1",title:"Edited Volume",chapterContentType:"chapter",authoredCaption:"Edited by"},subseries:null,tags:null},relatedBooks:[{type:"book",id:"7194",title:"Methods for Film Synthesis and Coating Procedures",subtitle:null,isOpenForSubmission:!1,hash:"0278e5a9a9d429a23692d1ce9bae2c2c",slug:"methods-for-film-synthesis-and-coating-procedures",bookSignature:"László Nánai, Aneeya Samantara, László Fábián and Satyajit Ratha",coverURL:"https://cdn.intechopen.com/books/images_new/7194.jpg",editedByType:"Edited by",editors:[{id:"61978",title:"Prof.",name:"Laszlo",surname:"Nanai",slug:"laszlo-nanai",fullName:"Laszlo Nanai"}],equalEditorOne:null,equalEditorTwo:null,equalEditorThree:null,productType:{id:"1",chapterContentType:"chapter",authoredCaption:"Edited by"}},{type:"book",id:"3621",title:"Silver Nanoparticles",subtitle:null,isOpenForSubmission:!1,hash:null,slug:"silver-nanoparticles",bookSignature:"David Pozo Perez",coverURL:"https://cdn.intechopen.com/books/images_new/3621.jpg",editedByType:"Edited by",editors:[{id:"6667",title:"Dr.",name:"David",surname:"Pozo",slug:"david-pozo",fullName:"David Pozo"}],equalEditorOne:null,equalEditorTwo:null,equalEditorThree:null,productType:{id:"1",chapterContentType:"chapter",authoredCaption:"Edited by"}},{type:"book",id:"397",title:"Nanofibers",subtitle:"Production, Properties and Functional Applications",isOpenForSubmission:!1,hash:"934fe33b73b2ecba961c67d5a90021ec",slug:"nanofibers-production-properties-and-functional-applications",bookSignature:"Tong Lin",coverURL:"https://cdn.intechopen.com/books/images_new/397.jpg",editedByType:"Edited by",editors:[{id:"49937",title:"Dr.",name:"Tong",surname:"Lin",slug:"tong-lin",fullName:"Tong Lin"}],equalEditorOne:null,equalEditorTwo:null,equalEditorThree:null,productType:{id:"1",chapterContentType:"chapter",authoredCaption:"Edited by"}},{type:"book",id:"1045",title:"Nanocomposites and Polymers with Analytical Methods",subtitle:null,isOpenForSubmission:!1,hash:"65d477e855685ea85913e5aba0c5217e",slug:"nanocomposites-and-polymers-with-analytical-methods",bookSignature:"John Cuppoletti",coverURL:"https://cdn.intechopen.com/books/images_new/1045.jpg",editedByType:"Edited by",editors:[{id:"49991",title:"Dr.",name:"John",surname:"Cuppoletti",slug:"john-cuppoletti",fullName:"John 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\r\n\tThis book is intended to serve as a guide and support to those undergraduate, postgraduate students, and researchers interested in understanding the process of dynamical evaluation of discrete and continuous systems with behavior from fixed points to chaos and vice-versa, and also to those who are interested in the most recent knowledge about fixed points evolution to chaos. Some dynamical systems are designated to have well-defined behavior but under certain not previewed conditions, the behavior of those systems could evolve into a very complex dynamical response. By the use of adequate mathematical tools, the complex behavior produced by unstable fixed points could be studied, characterized, and in most cases controlled. Moreover, it is well known that systems evaluated from fractional calculus models are capable to present stable, and unstable fixed points, and variations of them under parametric modification or variation in the integration order, which also could be controlled under different control mechanisms.
",isbn:"978-1-83768-436-6",printIsbn:"978-1-83768-435-9",pdfIsbn:"978-1-83768-437-3",doi:null,price:0,priceEur:0,priceUsd:0,slug:null,numberOfPages:0,isOpenForSubmission:!0,isSalesforceBook:!1,isNomenclature:!1,hash:"256aaeeb2cfa765c6a37c73e4fe7402f",bookSignature:"Dr. Guillermo Huerta-Cuellar",publishedDate:null,coverURL:"https://cdn.intechopen.com/books/images_new/12020.jpg",keywords:"Stability of Fixed Points, Banach Fixed Points Theorem, Fractional Calculus, Discontinuity of Fixed Points, Stability of Systems, Route to Chaos, Multistability, Perturbations Theory, Unstable Fixed Points, Adaptive Control, Control of Discrete-Time Chaotic Systems, Pseudo-Random Bit Generator",numberOfDownloads:null,numberOfWosCitations:0,numberOfCrossrefCitations:null,numberOfDimensionsCitations:null,numberOfTotalCitations:null,isAvailableForWebshopOrdering:!0,dateEndFirstStepPublish:"June 17th 2022",dateEndSecondStepPublish:"July 15th 2022",dateEndThirdStepPublish:"September 13th 2022",dateEndFourthStepPublish:"December 2nd 2022",dateEndFifthStepPublish:"January 31st 2023",dateConfirmationOfParticipation:null,remainingDaysToSecondStep:"24 days",secondStepPassed:!0,areRegistrationsClosed:!1,currentStepOfPublishingProcess:3,editedByType:null,kuFlag:!1,biosketch:"Dr. Guillermo Huerta Cuellar is a researcher in the area of nonlinear dynamics and chaotic systems, with experimental and theoretical results. Has been an author of more than 40 high-level papers, and academic editor in 4 journals, and 3 books.",coeditorOneBiosketch:null,coeditorTwoBiosketch:null,coeditorThreeBiosketch:null,coeditorFourBiosketch:null,coeditorFiveBiosketch:null,editors:[{id:"237167",title:"Dr.",name:"Guillermo",middleName:null,surname:"Huerta-Cuellar",slug:"guillermo-huerta-cuellar",fullName:"Guillermo Huerta-Cuellar",profilePictureURL:"https://mts.intechopen.com/storage/users/237167/images/system/237167.jpg",biography:"Guillermo Huerta Cuellar received a B.Sc. degree from Instituto de Investigación en\r\nComunicaciones Ópticas (IICO), from the Universidad Autónoma de San Luis Potosí, San Luis\r\nPotosí in 2004. After, he received a Ph.D. degrees from Centro de Investigaciones en Óptica\r\n(CIO), León Guanajuato, Mexico, in 2009. During 2010 to present he have been working at the\r\nExact Sciences and Technology Department in Centro Universitario de los Lagos, Universidad de\r\nGuadalajara. He has been Visiting Researcher in the department of Applied Mathematics at\r\nInstituto Potosino de Investigación Científica y Tecnológica, San Luis Potosí, México (2012-\r\n2014), in Department of Theory of Oscillations and Automatic Control, Faculty of Radiophysics,\r\nLobachevsky State University of Nizhny Novgorod, Russia (2016), sabbatical stay in the\r\nDepartment of Physics and Environmental Science at St. Mary's University, San Antonio, TX, US\r\n(2018-2019), and in División de Matemáticas Aplicadas, Instituto Potosino de Investigación\r\nCientífica y Tecnológica (IPICYT), in San Luis Potosí, S. L. P., México (2019-2020). He has\r\neditor of 3 books, and coauthor of 6 book chapters, international journals and conferences, and\r\nmore of 40 high impact publications. He is member in the National System for Researchers (SNI-\r\nCONACyT-México). He participates as Academic Editor in the Journal Complexity (2021),\r\nFrontiers in Applied Mathematics and Statistics (2022), and Axioms (2022). He has participations\r\nas a reviewer in high impact-factor journals. His research interests include study, characterization,\r\ndynamical behavior and design in nonlinear dynamical systems as lasers, electronics, and in\r\nnumerical models.",institutionString:"University of Guadalajara",position:null,outsideEditionCount:0,totalCites:0,totalAuthoredChapters:"2",totalChapterViews:"0",totalEditedBooks:"2",institution:{name:"University of Guadalajara",institutionURL:null,country:{name:"Mexico"}}}],coeditorOne:null,coeditorTwo:null,coeditorThree:null,coeditorFour:null,coeditorFive:null,topics:[{id:"15",title:"Mathematics",slug:"mathematics"}],chapters:null,productType:{id:"1",title:"Edited Volume",chapterContentType:"chapter",authoredCaption:"Edited by"},personalPublishingAssistant:{id:"478197",firstName:"Veronika",lastName:"Radosavac",middleName:null,title:"Dr.",imageUrl:"//cdnintech.com/web/frontend/www/assets/author.svg",email:"veronika@intechopen.com",biography:null}},relatedBooks:[{type:"book",id:"9272",title:"Optical Fiber Applications",subtitle:null,isOpenForSubmission:!1,hash:"dd156cc0568d8a4204d9f13609d8ff9e",slug:"optical-fiber-applications",bookSignature:"Guillermo Huerta-Cuellar and Roghayeh Imani",coverURL:"https://cdn.intechopen.com/books/images_new/9272.jpg",editedByType:"Edited by",editors:[{id:"237167",title:"Dr.",name:"Guillermo",surname:"Huerta-Cuellar",slug:"guillermo-huerta-cuellar",fullName:"Guillermo Huerta-Cuellar"}],productType:{id:"1",chapterContentType:"chapter",authoredCaption:"Edited by"}},{type:"book",id:"10767",title:"Fiber Optics",subtitle:"Technology and Applications",isOpenForSubmission:!1,hash:"f6624b8ef72a4a369383a4b719bba2a4",slug:"fiber-optics-technology-and-applications",bookSignature:"Guillermo Huerta-Cuellar",coverURL:"https://cdn.intechopen.com/books/images_new/10767.jpg",editedByType:"Edited by",editors:[{id:"237167",title:"Dr.",name:"Guillermo",surname:"Huerta-Cuellar",slug:"guillermo-huerta-cuellar",fullName:"Guillermo Huerta-Cuellar"}],productType:{id:"1",chapterContentType:"chapter",authoredCaption:"Edited by"}},{type:"book",id:"1591",title:"Infrared Spectroscopy",subtitle:"Materials Science, Engineering and Technology",isOpenForSubmission:!1,hash:"99b4b7b71a8caeb693ed762b40b017f4",slug:"infrared-spectroscopy-materials-science-engineering-and-technology",bookSignature:"Theophile Theophanides",coverURL:"https://cdn.intechopen.com/books/images_new/1591.jpg",editedByType:"Edited by",editors:[{id:"37194",title:"Dr.",name:"Theophile",surname:"Theophanides",slug:"theophile-theophanides",fullName:"Theophile Theophanides"}],productType:{id:"1",chapterContentType:"chapter",authoredCaption:"Edited by"}},{type:"book",id:"3161",title:"Frontiers in Guided Wave Optics and Optoelectronics",subtitle:null,isOpenForSubmission:!1,hash:"deb44e9c99f82bbce1083abea743146c",slug:"frontiers-in-guided-wave-optics-and-optoelectronics",bookSignature:"Bishnu Pal",coverURL:"https://cdn.intechopen.com/books/images_new/3161.jpg",editedByType:"Edited by",editors:[{id:"4782",title:"Prof.",name:"Bishnu",surname:"Pal",slug:"bishnu-pal",fullName:"Bishnu Pal"}],productType:{id:"1",chapterContentType:"chapter",authoredCaption:"Edited by"}},{type:"book",id:"371",title:"Abiotic Stress in Plants",subtitle:"Mechanisms and Adaptations",isOpenForSubmission:!1,hash:"588466f487e307619849d72389178a74",slug:"abiotic-stress-in-plants-mechanisms-and-adaptations",bookSignature:"Arun Shanker and B. 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Once took out from the manufactory, photovoltaic (PV) systems do not produce any toxic gas emissions, any noise or greenhouse gases. However, as with any industrial product, there are health and environmental impacts associated with the manufacture of solar cells and solar panels. The PV industry uses harmful and flammable substances, although in small amounts, which can involve environmental and occupational risks. The main environmental impacts of solar panels are associated with the use of land, water, natural resources, hazardous materials, life-cycle global warming emissions etc.
\nThe solar cell manufacturing process involves a number of harmful chemicals. These substances, similar to those used in the general semiconductor industry, include sulfuric acid, hydrogen fluoride, hydrochloric acid, nitric acid, 1,1,1-trichloroethane, and acetone. The amount and type of chemicals used depends on the type of cell and the technology used [1]. Thin film PV (TFPV) technology contains a higher number of toxic materials than those used in traditional silicon PV technology, including indium, gallium, arsenic, selenium, cadmium, telluride [2]. These materials must be handled and disposed of properly, to avoid with time serious environmental and human health problems.
\nThe current idea of the industry is to ensure that these highly valuable and often rare materials are recycled, to foresee the pollution hazards. This chapter deals with the possibility of chemicals used in PV cell manufacturing process to be released to air, water surface and the environment. An overview on the TFPV industry will be done to understand how TFPV cells and modules are designed and fabricated. Some hazardous materials and chemicals used in the manufacture of TFPV technology and their relative toxicity to human health and environment will be produced. Finally, some solutions to anticipate long term harmful impacts of these products will be proposed.
\nThe ultimate goal in the manufacturing of a PV module is widely determined by the cost per unit power output. The development of new PV technologies based on thin film materials has been led by the need for cheaper and more efficient semiconductor materials. Thin film solar cells (TFSCs) have the potential for rapid growth and low cost production. They have several advantages in manufacturing processes compared to conventional silicon solar cells such as [3]:
Cheaper to produce
Lower consumption of materials
Fewer processing steps
Availability of materials
Simplified materials handling
Can be deposited on many different substrates
A variety of deposition technique
Process lends itself to automation
Integrated, monolithic circuit design instead of assembly of individual solar cells into final products
TFSCs are typically made up of thin layers of semiconductor materials, for instance cadmium or zinc sulfide, glass, and a contact material. The materials used in the design of TFSCs include polycrystalline silicon, amorphous silicon (a-Si), and semiconductors compounds. Semiconductors compounds include cadmium sulfide (CdS), cadmium telluride (CdTe), copper sulfide (CuS2), copper indium diselenide (CIS), copper indium gallium diselenide (CIGS), copper gallium diselenide (CGS), germanium (Ge), and gallium arsenide (GaAs) [4]. Other semiconductors compounds like copper zinc tin sulfide (CZTS), copper zinc tin selenide (CZTSe) and copper iron tin sulfide (CFTS) have proved over recent years their potential to convert the solar radiation into electricity and are being developing in laboratories. In these solar cells, the n material can be made of CdS or ZnS, while the p material can be made of CuInSe2 (CIS) or Cu2ZnSnS4 (CZTS). Gallium arsenide (GaAs) solar cells can use aluminum, indium, or phosphorous as p or n-type materials. In Figure 1, are shown typical traditional structures of a-Si, CdTe and CIGS thin film solar cells.
\nExamples of thin-film solar cells structures: (a) amorphous silicon, (b) cadmium telluride, and (c) copper indium gallium diselenide [
To achieve better conversion efficiency, the active layer of the cell should have its band gap energy within the optimum range of 1.1–1.8 eV [5, 6]. Amorphous silicon is just at the rear end of the optimum band gap range at 1.8 eV [6]. Ge (0.66 eV) and CdS (2.45 eV) for example, have band gap energies outside of the optimum range, which means that those materials show limited conversion efficiencies. Ge is usually used to improve conversion efficiency of amorphous silicon cells [7], whereas, CdS is used to improve conversion efficiency in CIS and CdTe cells [8]. In general, on the basis of the band gap, materials used in TFSCs such as GaAs and CdTe have higher theoretical conversion efficiency than crystalline silicon, as they show band gap energies close to the optimum value of approximately 1.5 eV [8].
\nThin film materials have higher light absorption capabilities than crystalline silicon as they have a direct absorption profile. Therefore, they can be shaped thinner than conventional silicon which must cut on wafers. For example, 1 μm of a GaAs direct semiconductor is sufficient to absorb the same quantity of the photons light than 100 μm of an indirect silicon semiconductor. CIS or CIGS are direct band gap polycrystalline materials with high absorption coefficients in the order of 105 cm−1, allowing the active layer only to be about 2 μm [9]. Some CIGS-based solar cells usually introduce a thin film of CdS on the top of the CIGS layer as a buffer layer, in order to ensure the electrical transition between the CIGS layer and the window layer (the front of the cell). Zinc, molybdenum, tin, and aluminum are used in these cells as front and back contacts or components of the layers.
\nThe efficiency of the energy conversion process is determined by the materials parameters and technical design of the solar cell. Theoretical research on TFSCs indicates that, devices could achieve conversion efficiencies up to 25% under lab conditions [10]. In addition, efficiencies of cells can substantially increase by stacking interconnected cells, which could achieve up to 41.9% for tandem (two cells) and 50% for multi cells [11]. Concentrator systems and devices used to track the sun can be another way to improve efficiency of PV systems. For example, the use of terrestrial concentrator GaAs/Ge solar cells achieved conversion efficiency up to 36.9% [12]. The first TFSCs had conversion efficiencies of 8–12% [4]. Table 1 presents the record lab efficiencies for cells and modules of different technology. Note that these are just record lab efficiencies, not commercially guaranteed efficiencies.
\nTechnology | \nCell efficiency (%) | \nModule efficiency (%) | \nDescription cell/module | \n
---|---|---|---|
Crystalline silicon | \n26.7 ± 0.5 | \n24.4 ± 0.5 | \nKaneka [14]/Kaneka (108 cells) [14] | \n
Multi crystalline silicon | \n22.3 ± 0.4 | \n19.9 ± 0.4 | \nFhG-ISE [15]/Trina solar (120 cells) [16] | \n
CIGS | \n21.7 ± 0.5 | \n19.2 ± 0.5 | \nSolar Frontier [17]/Solar Frontier (70 cells) [18] | \n
CdTe | \n21.0 ± 0.4 | \n18.6 ± 0.5 | \nFirst Solar [19]/First Solar [20] | \n
Thin film silicon | \n10.5 ± 0.3 | \n– | \nCSG solar [21]/ | \n
Amorphous silicon | \n10.2 ± 0.3 | \n9.1 | \nAIST [22] | \n
GaAs | \n28.8 ± 0.9 | \n25.1 ± 0.8 | \nAlta devices [23]/Alta devices [24] | \n
CZTS | \n10.0 ± 0.2 | \n– | \nUNSW [25] | \n
Confirmed terrestrial record cell and module efficiencies measured under the global AM 1.5 spectrum (1000 W/m2) at a cell temperature of 25°C (IEC 60904-3: 2008, ASTM G-173-03 global) [13].
Crystalline silicon-based technologies continue to dominate the world market share with about 95% of the total production in 2017 [26]. The share of multi crystalline technology is now about 62% of total production [26]. In 2017, the market share of all thin film technologies counted for about 5% [26]. Amorphous silicon holds 4% of this part followed by cadmium telluride with 1%. The others, especially CIGS and thin film silicon, although already available at the commercial stage still represent a negligible part of the market.
\nThin film materials such GaAs, GaInP2, and CIGS have been investigated for the development of concentrator cells. Concentrator cells have been designed to increase the intensity of the solar radiation on PV cells through the use of optical lenses. They consist of optical lenses, a cell assembly, a housing element, a secondary concentrator to reflect off-center light rays onto the cell, a mechanism to dissipate excess heat produced by concentrated sunlight, and various adhesives and contacts [27]. The main advantages of concentrator cells are: they reduce the number or size of solar cells used, enhance the power output, and enhance the solar cell efficiency under concentrated sunlight [8]. A conversion efficiency of 32% has been reported for concentrator cells [28]. This other way to increase the cells efficiency nevertheless presents some drawbacks: they involve expensive tracking systems and more precise controls than the traditional flat plate systems, they generate higher operating temperatures, which can decrease the long-term stability and lifetime of the PV cells. Concentrator cells were first designed for space applications, but modules for terrestrial applications are already commercially available [8].
\nIt is known that the complexity of solar cells and modules manufacturing strongly raises their costs. Conventional silicon is handled in different many ways, complicating therefore fabrication processes. First, silicon raw material is melted at very high temperatures and grown into a silicon ingot. Then, the ingot is molded and sawn into individual wafers for cell processing [3]. After testing, individual cells are connected together in a suitable electrical configuration. Finally, the connection circuit is hermetically packaged in a weatherproof flat container, typically with an aluminum frame. Figure 2 shows the flowchart describing the complete process to manufacture a conventional crystalline silicon-based module. The process requires more than 20 separate steps before a module is complete.
\nDifferent process steps for fabrication of crystalline silicon modules [
In contrast to crystalline silicon, thin film manufacturing steps are very simple. For example, the connection of the circuit from individual cells is removed. Instead of processing and handling ingots, wafers and cells, the final circuit is directly fabricated on a single large substrate, usually glass [3]. Thin film circuits require the deposition of three main layers namely a back contact or a base electrode layer usually deposited on glass, a semiconductor layer and a transparent window layer also acting like a conductor front contact as it is typically seen in Figure 1(c). The semiconductor layer is divided into the absorber and buffer layers. The stack of the absorber layer in one side and the buffer and window layers in another side creates an efficient n-p PV heterojunction. In TFSCs, the crucial phenomena of charge carriers generation and separation occur within the absorber; this layer therefore plays an important role in defining the electrical output parameters of the solar cell and usually confers its name to the technology. We have for instance CdTe for cadmium telluride based PV technology, CIGS for a range of chalcopyrite based PV technology and CZTS for a range of kesterite-based PV technology [3, 29].
\nAn important advantage of thin film PV module manufacturing is found in the monolithic series interconnection of individual cells. Thin film cells are interconnected through simple patterning steps integrated into the processing line. The patterning steps achieve the integrated series interconnection from cell to cell on the circuit as shown in Figure 3. Three scribes between deposition steps complete the cell definition, separation and interconnection. A transparent conductive oxide (TCO) can also be integrated to the system for photon absorption optimization [29].
\nDifferent process steps for fabrication of thin film modules [
To produce thin film PV devices, a variety of chemicals and materials is used. The types and quantities of chemicals used will depend on the type of the technology and the type of cell being produced. One can found also some variability in the use of chemicals for producing the same type of PV solar cells by different PV manufacturers. This means that each manufacturer has its own recipe to produce a type of solar cell. Table 2 gives a general list, but non-exhaustive of chemicals and materials used in the manufacturing of some TFSCs and modules.
\nCIS | \nCIGS | \nCZTS | \nGaAs | \nCdTe | \nCu2S | \na-Si | \n
---|---|---|---|---|---|---|
Cadmium | \nCadmium | \nCadmium | \nArsenic | \nCadmium chloride | \nAmmonium chloride | \nAcetone | \n
Copper | \nCopper | \nCopper | \nArsine | \nCadmium | \nAmmonium fluoroborate | \nAluminum | \n
Hydride gas | \nGallium | \nHydrogen selenide | \nGallium | \nMolybdenum | \nCadmium sulfide | \nChloro-silanes | \n
Hydrogen sulfide | \nIndium | \nHydrogen sulfide | \nHydrochloric acid | \nNickel | \nChromate coating | \nDiborane | \n
Hydrogen selenide | \nMolybdenum | \nMolybdenum | \nMethane | \nSulfur | \nCopper | \nHydrochloric acid | \n
Indium | \nSelenium | \nSelenium | \nPhosphine | \nTellurium | \nCuprous chloride | \nHydrofluoric acid | \n
Molybdenum | \nZinc | \nThiourea | \nTrichloroethylene | \nThiourea | \nGold | \nHydrogen | \n
Selenium | \n\n | Tin | \nTriethyl gallium | \nTin | \nHydrochloric acid | \nIsopropanol | \n
Zinc | \n\n | Zinc | \nTrimethyl gallium | \n\n | Hydrogen sulfide | \nNitrogen | \n
\n | \n | \n | \n | \n | Methanol | \nPhosphine | \n
\n | \n | \n | \n | \n | Nickel | \nPhosphoric acid | \n
\n | \n | \n | \n | \n | Nitrogen | \nSilane | \n
\n | \n | \n | \n | \n | Polyvinyl butyral | \nSilicon tetrafluoride | \n
\n | \n | \n | \n | \n | Silicon monoxide | \nSilicon | \n
\n | \n | \n | \n | \n | Sodium chloride | \nSodium hydroxide | \n
\n | \n | \n | \n | \n | Tantalum pentoxide | \nTin | \n
\n | \n | \n | \n | \n | Zinc | \n\n |
\n | \n | \n | \n | \n | Zinc fluoroborate | \n\n |
Chemicals and materials involved in the manufacturing process of different thin film PV technology [8].
In TFPV technology, only few amounts of semiconductor materials are necessary to produce thin or ultra-thin layers of a solar cell. The amounts of chemicals and materials used in the manufacturing of TFPV devices vary depending on the type of cell being produced. For example, the quantity of cadmium in a CIS PV module is evaluated at 0.04 g/m2 and in a CdTe PV module at 5 g/m2 [30]. Research allowed reducing significantly the amount of cadmium in PV devices by using light-trapping methods [8]. These methods have led to reduce the thickness of CdTe layers from 2 to o.5 μm, corresponding to 5.5 and 0.55 g/m2 amount of cadmium, respectively [8]. A diversified number of acids and corrosive liquids are used sensibly in large quantities during the manufacturing processes. These chemicals, similar to those used in the general semiconductor industry, and including sulfuric acid, hydrochloric acid, hydrogen fluoride and nitric acid are primarily used for cleaning wafers in the case of crystalline silicon or for removing impurities from raw semiconductor materials. Solvents like acetone, ethanol and 1,1,1-trichloroethane are also used for cleaning in different steps of the fabrication processes.
\nMany hazardous materials as well as explosive and toxic gases are involved in the manufacturing processes of thin film PV cells and modules. Table 3 presents a general list of some materials and chemicals and their description, classified as hazardous by the Department of Transportation (DOT) in USA and used in the whole PV industry. But the amounts and recipes vary from one manufacturer to another. Moreover, it is possible that some of these chemicals may no longer be used for PV devices production as the fabrication processes are constantly changing and evolving [8].
\nMaterial | \nSource | \nDOT hazard classification | \nCritical effects | \n
---|---|---|---|
Arsenic | \nGaAs | \nPoison | \nCancer, lung | \n
Arsine | \nGaAs (CVD) | \nHighly toxic gas | \nBlood, kidney | \n
Cadmium | \nCdTe, CdS, CdCl2 | \nPoison | \nCancer, kidney, bone | \n
Diborane | \na-Si dopant | \nFlammable gas | \nPulmonary | \n
Diethyl silane | \na-Si deposition | \nFlammable liquid | \n\n |
Diethyl zinc | \n\n | Pyrophoric liquid | \n\n |
Dimethyl zinc | \n\n | Spontaneously combustible | \n\n |
Hydrochloric acid | \na-Si, GaAs, Cu2S/CdS | \nCorrosive material | \n\n |
Hydrofluoric acid | \na-Si | \nCorrosive material | \n\n |
Hydrogen | \na-Si | \nFlammable gas | \nFire hazard | \n
Hydrogen selenide | \nCIS | \nHighly toxic gas | \nIrritant | \n
Hydrogen sulfide | \nCIS, Cu2S/CdS | \nFlammable gas | \nIrritant, Fire hazard | \n
Indium | \nCIS, CIGS | \nNot regulated | \nPulmonary, bone | \n
Methane | \nGaAs | \nFlammable gas | \nFire hazard | \n
Molybdenum hexafluoride | \n\n | Toxic and corrosive gas | \n\n |
Oxygen | \nx-Si | \nGaseous oxidizer | \n\n |
Phosphine | \na-Si dopant | \nHighly toxic and pyrophoric gas | \nIrritant, fire hazard | \n
Phosphorus oxychloride | \nx-Si | \nCorrosive material | \nIrritant, kidney | \n
Selenium | \nCIS, CZTS | \nPoison | \nIrritant | \n
Silane | \na-Si deposition | \nPyrophoric gas | \nIrritant, fire, explosion hazard | \n
Silicon tetrafluoride | \na-Si deposition | \nToxic and corrosive gas | \n\n |
Tellurium | \nCdTe | \nNot regulated | \nCyanosis, liver | \n
Tertiarybutyl arsine | \n\n | Pyrophoric and highly toxic liquid | \n\n |
Tertiarybutyl phosphine | \n\n | Pyrophoric liquid | \n\n |
Trimethyl aluminum | \n\n | Pyrophoric liquid | \n\n |
Trimethyl gallium | \nGaAs | \nPyrophoric liquid | \n\n |
Tungsten hexafluoride | \n\n | Toxic and corrosive gas | \n\n |
The wastes generated by the semiconductors materials used in TFPV industry are in general non-negligible. Acids and solvents each represented about one-third of the total wastes by weight (about 7000 tons) [33]. About 35% of the semiconductor wastes were evacuated as diluted acid solutions to sewage treatment plants and 37% were sent to offsite treatment facilities. About 27% of the total wastes were released to the atmosphere. Only 0.8% of the total wastes were discharged directly to the surface water and 0.015% to the landfills [33].
\nThe manufacturing of PV devices includes some chemicals which can be toxic or harmful to the humankind. The potential for health concerns is not only depend on the material harmful characteristics, but also on certain conditions which must be taken into account. For example, in addition to harmful characteristics of the chemicals, their concentration must be high enough to constitute a real problem in a given environment: a human or an animal must be in the surroundings of where the device or compound is used; there must be a total exposition process from the compound to the environment. Most often, the primary persons exposed to the PV manufacturing residues are the plant workers. The easiest exposure route for workers is inhalation of vapors or dusts and also via direct contact if spills occur [8]. Another route for workers to be infected by chemicals resulting from manufacturing processes could be accidental ingestion. The ones outside a manufacturing environment could be infected by chemicals via inhalation from stack emissions, elusive air emissions or from accidental release after fire or explosion [8]. But the exposure of nearby residents or other workers would be less than the plan workers because the chemicals would be dispersed in the ambient air after their emission. There are possibilities for lands containing spent PV modules to pollute the environment. For example, at the surroundings of spent PV modules, groundwater seepage could reach a drinking water source or river; but in both cases, there would be dilution (not totally) of the waste before the water was used. In short, any vapor emissions or groundwater seepage would be diluted by the ambient air or by the water before reaching nearby residents.
\nIt is well known that the fabrication of PV cells and modules needs the use of more or less large quantities of solvents and acids for synthesis and cleaning, gases for depositing ultra-thin film of semiconductors materials and metals according to the type of PV cell or module being fabricated. Most of these chemicals are highly toxic and harmful for humans and environment. Here are discussed some health and environment issues caused by chemicals hazards related to materials’ toxicity, flammability, explosiveness, and carcinogen nature. Below is a summary of potential health and environmental issues concerning the manufacture and the use of some thin film technologies such as CdTe, a-Si and CI(G)S.
\nThe manufacturing of CdTe solar cells can cause occupational health risks associated with the toxicity of the main constitutive materials such as CdTe, CdS, and cadmium chloride (CdCl2). Since cadmium compounds are usually used in powder and in liquid form, the primary route of exposure in manufactory settings is inhalation of cadmium-containing vapors or dust or ingestion of spills if this occurs. Processes in which cadmium compounds are used or produced in the form of fine fumes or particles present more risks to health, because they promote the absorption of these fine particles by the lung and thus can cause lung cancer. A long-term exposure can also have harmful effects on bone and kidney [32]. In addition, the inhalation of cadmium-containing vapors or dusts can result in metal vapor fever, pneumonitis, pulmonary edema, and finally death [32]. Since cadmium is produced primarily as a by-product of zinc mining, the levels of Cd production is fixed by the levels of zinc production. Because Zn is produced in large amounts, considerable amounts of Cd are also generated as by-product, without taking into account the amount used or required in PV technology. If the amount of Cd generated as a by-product of zinc is not totally absorbed by the whole market, it is discharged to the environment as hazardous waste. Thus, encapsulating Cd in CdTe for PV modules fabrication could be a trusty way to preserve the environment of hazards that can cause free elemental Cd. CdTe is more stable and insoluble to water; as such, it may be less toxic or harmful than free elemental Cd.
\nCdTe and CdS thin films are solid and are packaged into thick layers of glass or a waterproof container. At ambient conditions, the vapor pressure of CdTe is zero. Therefore, it is impossible for any vapors or dust to be released when using CdTe PV modules. The only or the more plausible way for cadmium to be released and absorbed by residents is via consumed modules in residential fires. Even in this way, flame temperatures in residential fires typically 800–1000°C, are not sufficient to vaporize CdTe [34]. The melting point of CdTe is 1041°C, and evaporation starts at 1050°C. The melting point of CdS is 1750°C [34]. Previous studies showed that CdTe releases are not probable to happen during residential fires or accidental breaks [35, 36, 37]. The potential for CdTe emissions could occur only in the case of industrial fires or from incinerating spent PV modules. In the first case, the fire itself probably would cause much greater risk than any potential Cd emissions [38]. The second case can happen only if CdTe modules end in waste-incineration streams [32].
\nAmorphous silicon based solar cells are usually fabricated using the plasma enhanced chemical vapor deposition (PECVD) technique. Silane gas (SiH4), mainly used as precursor, is extremely pyrophoric and represents the main safety hazard of this technology. It can spontaneously ignite for lower concentrations ranging from 2 to 3%, depending on the carrier gas. Due to the high pyrophoric nature of silane and even for concentrations lower than 2% in the carrier gas, pyrophoric footprints can be found locally if mixtures are not complete. Mixtures could be metastable and ignited after a certain time, for silane concentrations greater than 4.5% [32].
\nAmorphous silicon solar cells contain a large concentration of hydrogen atoms about 10%, as they are crucial for the material electronic properties [3]. But, the technology usually refers to use the words “amorphous silicon” instead of “hydrogenated amorphous silicon (a-Si:H),” because “unhydrogenated amorphous silicon” is of no use in electronic devices [3]. Hydrogen used in amorphous silicon manufacturing is explosive and flammable [32]; therefore, it is necessary for PV manufacturers to use highly sophisticated gas handling systems to minimize and even avoid the risks of fire and explosions. One efficient way to overcome these hazards is to store silane and hydrogen gases in bulk from tube trailers to avoid changing gas cylinders. Others toxic gases such as arsine (AsH3), phosphine (PH3) and germane (GeH4), used as doping-gases in the amorphous silicon manufacturing cannot pose any serious hazards to the public health or the environment if they are used in very small amounts. However, leakage of these gases should be avoided because it could cause significant occupational risks.
\nCIGS thin films can either be deposited by the thermal co-evaporation of the constitutive elements, or by the fast deposition of metal precursor layers which then react in a subsequent processing step to form the final compound [3]. In CIGS TFSCs, a very thin film of cadmium sulfide (CdS) is deposited by chemical bath method and acting as a buffer layer. However, CIGS solar cells freed of toxic cadmium have already been successfully produced [39]. The toxicity of copper, indium, gallium, and selenium is considered benign. In addition, elemental selenium is capital in the human nutrition; daily absorptions of 500–860 μg of selenium are acceptable for long periods [40]. Although elemental selenium has only a moderated toxicity associated with it, hydrogen selenide (H2Se) used in the manufacture of CIGS TFSCs is highly toxic and is dangerous to life and health [32]. Hydrogen selenide acts like arsine gas on human body even though its vapor pressure is lower than that of arsine. Moreover, it can oxidize to the less toxic selenium on the mucous membranes of the breathing system. The manufacturing system should be enclosed under negative pressure, and should be exhausted through an essential control scrubber to prevent hazards from highly toxic H2Se gas. Associated hazardous chemicals can be minimized by using safer alternatives methods like flow restricting valves and other safety options presented in detail by Fthenakis [41]. Some studies have shown that CIS and CGS have mild systemic toxicity and have shown no effects on ovulation, reproduction, liver and kidney [8]. But CIS was found to be less toxic than CGS and CdTe [8].
\nThe releases of chemicals in form of vapors or spills from the PV industry constitute the real hazards to the public health and to the environment. A variety of treatment methods or ways have been developed to manage or to minimize wastes produced by PV industries. These methods include waste minimization and recycling of PV modules at the end of their life.
\nWaste minimization is usually employed in the semiconductor industry, and is also appropriate to the PV sector. It includes reuse of rinse water after treatment, shifting toward less toxic chemicals as possible, control of spills and leaks, reduction of vapor losses, and selection of process that use fewer hazardous chemicals [8]. Some of these methods are not broadly used in the semiconductor sector due to the requirement of highly purified materials. The main goal to reuse processed chemicals in the semiconductor sector is to limit amounts of some harmful solvents and acids. A lot of changes have been successfully made in the manufacturing processes such as using less toxic materials instead of hazardous and replacing acid bath processing by acid spray in cleanings [33]. Splitting of spent solvents by type like chlorinated and non-chlorinated solvents can help increasing the volume of solvents that can be easily recycled [8].
\nAnother way to minimize wastes generated during the fabrication of thin film solar cells and modules is reducing the amounts of toxic elements. For example, the possibility of reducing the quantity of toxic cadmium in the synthesis of CdS thin films, which plays the role of the buffer layer in CdTe and CIS solar cells has been investigated. It was found that by varying the solution concentration and temperature in the chemical bath deposition process for instance, the typical concentration of cadmium can be reduced up to 10 times [42]. These different ways to operate can help reducing substantially the amount of wastes generated during the PV manufacturing processes.
\nIt will be many years before most PV panels come to the end of their life (about 30 years), so it is needed to put in place some recycling schemes to prevent in time the harmful effects of spent panels on the environment. Some major PV manufacturers have experienced a promising approach called “cradle to cradle” [8]. The concept of this approach is to recycle the toxic materials of the process into new products, which are less or not at all toxic. This approach has enabled reducing the potential for release wastes into the environment, and enhancing the amount of new resources that must be obtained.
\nThere are different ways or models of recycling PV modules implemented by PV manufacturers. Deficient PV systems from manufacturing plants and spent PV modules are collected by manufacturers for being recycled. The first intent was to apply the electronics model of recycling, which involves an intermediate company that would gather the spent PV modules, dismount them, and deal the usable parts. Unfortunately, this model is less suitable to the PV sector, because usable materials are very thin, and therefore, the modules are difficult to dismantle. An efficient way for recycling PV modules is to use large metal smelters to melt scrap PV modules. For example, save cadmium from CIS modules would need the use of a copper and zinc smelter, whereas CdTe cannot be melted in a zinc smelter as cadmium is a by-product of zinc mining. A method of recycling CdTe modules and developed by Solar Cells Inc. involves dismantling of the module, followed by glass milling and separation of the metals following a combination of physical and chemical methods such as chemical dissolution, mechanical separation, precipitation, and electrodeposition [43]. By this way, about 80% of the original tellurium was saved. Another method for recycling CIS and CdTe modules, and developed by Drinkaard Metalox Inc. uses chemical stripping, electrodeposition, precipitation, and evaporation. About 95% of tellurium and 96% of the lead for cells connection were saved by combining these different methods. This method allows the potential reuse of the substrate, because the metal conducting layer remains connected to the glass substrate after the separation of the elements [44]. A method of recycling CIS and CdTe modules based on electrochemical reactions in a closed loop system has been experienced at the early of years 2000 By Menezes et al. [45]. This approach could also lead to improve efficiency in the original CIS solar cells.
\nIn addition to the environment safety, another major reason for developing relevant and cost-effective methods for recycling PV modules is the scarcity of some of the exotic elements used in PV industry. Reserves of some elements like germanium, indium and tellurium are low and continue to decrease with time [8]. Considering that the TFPV technology is still growing, it is needed to develop more feasible ways to recycle PV materials in order to preserve their reserves in the earth crust.
\nThis chapter has shown the potential of some materials and chemicals used in the manufacture of thin film PV solar cells and modules to be hazardous. These hazardous chemicals can pose serious health and environment concerns, if proper cautions are not taken. Hazards could arise first from the toxicity and explosiveness of specific gases, then could affect occupational health and, in some cases, public health through accidents or elusive air emissions. Accidental releases of toxic gases and vapors can be prevented by minimizing wastes produced during the processes through choosing safer technologies, processes and less toxic materials. Recycling is expected to be the preferred disposal option for spent PV modules in the future, in order to minimize the potential environmental impacts and recover source of metals. Research is ongoing to build feasible methods of recycling spent modules for environmental safety.
\nThe authors acknowledge ANSOLE (African Network for Solar Energy) for financial support.
\nThe authors declare that they have no conflict of interest.
\nHervé Joël Tchognia Nkuissi is still grateful to the ICTP (The Abdus Salam International Centre for Theoretical Physics) and ANSOLE (African Network for Solar Energy) for financial support within the framework of the Intra-African Exchange (INEX) program, which helped him to complete his PhD studies at Hassan II University of Casablanca in Morocco.
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Skarzynski",coverURL:"https://cdn.intechopen.com/books/images_new/7894.jpg",editedByType:"Edited by",editors:[{id:"174266",title:"Prof.",name:"Stavros",middleName:null,surname:"Hatzopoulos",slug:"stavros-hatzopoulos",fullName:"Stavros Hatzopoulos"}],equalEditorOne:null,equalEditorTwo:null,equalEditorThree:null,productType:{id:"1",chapterContentType:"chapter",authoredCaption:"Edited by"}},{type:"book",id:"7062",title:"Rhinosinusitis",subtitle:null,isOpenForSubmission:!1,hash:"14ed95e155b1e57a61827ca30b579d09",slug:"rhinosinusitis",bookSignature:"Balwant Singh Gendeh and Mirjana Turkalj",coverURL:"https://cdn.intechopen.com/books/images_new/7062.jpg",editedByType:"Edited by",editors:[{id:"67669",title:null,name:"Balwant Singh",middleName:null,surname:"Gendeh",slug:"balwant-singh-gendeh",fullName:"Balwant Singh Gendeh"}],equalEditorOne:null,equalEditorTwo:null,equalEditorThree:null,productType:{id:"1",chapterContentType:"chapter",authoredCaption:"Edited by"}},{type:"book",id:"7461",title:"Management of Tinnitus",subtitle:"The Enriching Views of Treatment Options",isOpenForSubmission:!1,hash:"9626e5a89247b934de503a3d08752e14",slug:"management-of-tinnitus-the-enriching-views-of-treatment-options",bookSignature:"Tang-Chuan Wang",coverURL:"https://cdn.intechopen.com/books/images_new/7461.jpg",editedByType:"Edited by",editors:[{id:"201262",title:"Dr.",name:"Tang-Chuan",middleName:null,surname:"Wang",slug:"tang-chuan-wang",fullName:"Tang-Chuan Wang"}],equalEditorOne:null,equalEditorTwo:null,equalEditorThree:null,productType:{id:"1",chapterContentType:"chapter",authoredCaption:"Edited by"}},{type:"book",id:"7131",title:"Selected Topics in Facial Nerve Disorders",subtitle:null,isOpenForSubmission:!1,hash:"0c16c1a947ded4fae51c047243593fbf",slug:"selected-topics-in-facial-nerve-disorders",bookSignature:"Isam Al-Zwaini and Mohammed Jalal Hussein",coverURL:"https://cdn.intechopen.com/books/images_new/7131.jpg",editedByType:"Edited by",editors:[{id:"30993",title:"Prof.",name:"Isam Jaber",middleName:null,surname:"Al-Zwaini",slug:"isam-jaber-al-zwaini",fullName:"Isam Jaber Al-Zwaini"}],equalEditorOne:null,equalEditorTwo:null,equalEditorThree:null,productType:{id:"1",chapterContentType:"chapter",authoredCaption:"Edited by"}},{type:"book",id:"7245",title:"Challenging Issues on Paranasal Sinuses",subtitle:null,isOpenForSubmission:!1,hash:"67a331ebb2dd2b8f73228fa4daa7382f",slug:"challenging-issues-on-paranasal-sinuses",bookSignature:"Tang-Chuan Wang",coverURL:"https://cdn.intechopen.com/books/images_new/7245.jpg",editedByType:"Edited by",editors:[{id:"201262",title:"Dr.",name:"Tang-Chuan",middleName:null,surname:"Wang",slug:"tang-chuan-wang",fullName:"Tang-Chuan Wang"}],equalEditorOne:null,equalEditorTwo:null,equalEditorThree:null,productType:{id:"1",chapterContentType:"chapter",authoredCaption:"Edited by"}}],booksByTopicTotal:22,seriesByTopicCollection:[],seriesByTopicTotal:0,mostCitedChapters:[{id:"33875",doi:"10.5772/32762",title:"Cochlear Implants in Children: A Review",slug:"cochlear-implants-in-children-a-review",totalDownloads:4964,totalCrossrefCites:9,totalDimensionsCites:19,abstract:null,book:{id:"1393",slug:"hearing-loss",title:"Hearing Loss",fullTitle:"Hearing Loss"},signatures:"Julia Sarant",authors:[{id:"92583",title:"Dr.",name:"Julia",middleName:null,surname:"Sarant",slug:"julia-sarant",fullName:"Julia Sarant"}]},{id:"49574",doi:"10.5772/61835",title:"Classification of Hearing Loss",slug:"classification-of-hearing-loss",totalDownloads:5385,totalCrossrefCites:9,totalDimensionsCites:13,abstract:"Hearing loss is the partial or total inability to hear sound in one or both ears. People with hearing loss make up a significant 5.3% of the world’s population. The audiogram is an important tool used to determine the degree and type of hearing loss. This chapter presents hearing loss classification, which can aid in clinical diagnosis and help in finding appropriate therapeutic management. Hearing loss is classified based on ear anatomy, type of hearing loss, degree of the disease, and configuration of the audiogram. When the hearing loss is fully characterized, appropriate medical intervention can be assigned.",book:{id:"4654",slug:"update-on-hearing-loss",title:"Update On Hearing Loss",fullTitle:"Update On Hearing Loss"},signatures:"Waleed B. Alshuaib, Jasem M. Al-Kandari and Sonia M. Hasan",authors:[{id:"174550",title:"Prof.",name:"Waleed",middleName:null,surname:"Alshuaib",slug:"waleed-alshuaib",fullName:"Waleed Alshuaib"},{id:"174551",title:"MSc.",name:"Jasim",middleName:null,surname:"Al-Kandari",slug:"jasim-al-kandari",fullName:"Jasim Al-Kandari"},{id:"174552",title:"Dr.",name:"Sonia",middleName:null,surname:"Hasan",slug:"sonia-hasan",fullName:"Sonia Hasan"}]},{id:"49108",doi:"10.5772/61217",title:"Hearing Loss and the Voice",slug:"hearing-loss-and-the-voice",totalDownloads:3350,totalCrossrefCites:2,totalDimensionsCites:10,abstract:"The voice varies according to the context of speech and to the physical and psychological conditions of the human being, and there is always a normal standard for the vocal output. Hearing loss can impair voce production, causing social, educational, and speech limitations, with specific deviation of the communication related to speech and voice. Usually, the voice is not the main focus of the speech-language pathology therapy with individuals with hearing loss, but its deviations can represent such a negative impact on this population that it can interfere on speech intelligibility and crucially compromise the social integration of the individual. The literature vastly explores acoustic and perceptual characteristics of children and adults with hearing loss. Voice problems in individuals with this impairment are directly related to its type and severity, age, gender, and type of hearing device used. While individuals with mild and moderate hearing loss can only present problems with resonance, severely impaired individuals may lack intensity and frequency control, among other alterations. The commonly found vocal deviations include strain, breathiness, roughness, monotone, absence of rhythm, unpleasant quality, hoarseness, vocal fatigue, high pitch, reduced volume, loudness with excessive variation, unbalanced resonance, altered breathing pattern, brusque vocal attack, and imprecise articulation. These characteristics are justified by the incapability of the deaf to control their vocal performance due to the lack of auditory monitoring of their own voice, caused by the hearing loss. Hence, the development of an intelligible speech with a good quality of voice on the hearing impaired is a challenge, despite the sophisticated technological advances of hearing aids, cochlear implants and other implantable devices. The purpose of this chapter is therefore to present an extensive review of the literature and describe our experience regarding the evaluation, diagnosis, and treatment of voice disorders in individuals with hearing loss.",book:{id:"4654",slug:"update-on-hearing-loss",title:"Update On Hearing Loss",fullTitle:"Update On Hearing Loss"},signatures:"Ana Cristina Coelho, Daniela Malta Medved and Alcione Ghedini\nBrasolotto",authors:[{id:"174260",title:"M.Sc.",name:"Ana Cristina",middleName:null,surname:"Coelho",slug:"ana-cristina-coelho",fullName:"Ana Cristina Coelho"},{id:"174643",title:"Dr.",name:"Alcione",middleName:null,surname:"Brasolotto",slug:"alcione-brasolotto",fullName:"Alcione Brasolotto"},{id:"174644",title:"MSc.",name:"Daniela",middleName:null,surname:"Medved",slug:"daniela-medved",fullName:"Daniela Medved"}]},{id:"33864",doi:"10.5772/33569",title:"The Mongolian Gerbil as a Model for the Analysis of Peripheral and Central Age-Dependent Hearing Loss",slug:"the-mongolian-gerbil-as-a-model-for-the-analysis-of-peripheral-and-central-age-dependent-hearing-los",totalDownloads:2366,totalCrossrefCites:3,totalDimensionsCites:6,abstract:null,book:{id:"1393",slug:"hearing-loss",title:"Hearing Loss",fullTitle:"Hearing Loss"},signatures:"Gleich Otto and Strutz Jürgen",authors:[{id:"96191",title:"Dr.",name:"Otto",middleName:null,surname:"Gleich",slug:"otto-gleich",fullName:"Otto Gleich"},{id:"96195",title:"Prof.",name:"Jürgen",middleName:null,surname:"Strutz",slug:"jurgen-strutz",fullName:"Jürgen Strutz"}]},{id:"55472",doi:"10.5772/intechopen.69089",title:"Paranasal Sinus Anatomy: What the Surgeon Needs to Know",slug:"paranasal-sinus-anatomy-what-the-surgeon-needs-to-know",totalDownloads:5698,totalCrossrefCites:5,totalDimensionsCites:6,abstract:"Performing a smooth and clean sinus surgery goes hand in hand with a perfect understanding of the nasal and paranasal anatomy. Within this chapter, the paranasal and related structures surgical anatomy will be extensively reviewed, with emphasis on the anatomical landmarks and the normal anatomical variations, which have a significant impact on the function, pathology, and surgical procedures of the paranasal sinuses.",book:{id:"5911",slug:"paranasal-sinuses",title:"Paranasal Sinuses",fullTitle:"Paranasal Sinuses"},signatures:"Abdulmalik S. Alsaied",authors:[{id:"199716",title:"Dr.",name:"Abdulmalik",middleName:"Saad",surname:"Alsaied",slug:"abdulmalik-alsaied",fullName:"Abdulmalik Alsaied"}]}],mostDownloadedChaptersLast30Days:[{id:"63699",title:"Management of the Complications of Maxillary Sinus Augmentation",slug:"management-of-the-complications-of-maxillary-sinus-augmentation",totalDownloads:7807,totalCrossrefCites:1,totalDimensionsCites:3,abstract:"Dental implant rehabilitation of the posterior maxillary region has always been a challenging issue due to both alveolar ridge atrophy and sinus pneumatization. Maxillary sinus augmentation is a well-known and predictable procedure in vertical deficiencies of the posterior maxilla. To date, various techniques have been described based on the physiology of intrasinus bone repair to obtain better outcomes. Nevertheless, these procedures could also be associated with several intra- and postoperative complications such as perforation of the sinus membrane, hemorrhage, infection, graft resorption, and loss of the graft or implants. The aim of this chapter is to review the contemporary methods for maxillary sinus augmentation and to present both recommendations for prevention and management of the associated complications.",book:{id:"7245",slug:"challenging-issues-on-paranasal-sinuses",title:"Challenging Issues on Paranasal Sinuses",fullTitle:"Challenging Issues on Paranasal Sinuses"},signatures:"Alper Sindel, Mehmet Mustafa Özarslan and Öznur Özalp",authors:[{id:"244837",title:"Dr.",name:"Alper",middleName:null,surname:"Sindel",slug:"alper-sindel",fullName:"Alper Sindel"},{id:"244918",title:"Dr.",name:"Mehmet Mustafa",middleName:null,surname:"Özarslan",slug:"mehmet-mustafa-ozarslan",fullName:"Mehmet Mustafa Özarslan"},{id:"244919",title:"Ms.",name:"Öznur",middleName:null,surname:"Özalp",slug:"oznur-ozalp",fullName:"Öznur Özalp"}]},{id:"55472",title:"Paranasal Sinus Anatomy: What the Surgeon Needs to Know",slug:"paranasal-sinus-anatomy-what-the-surgeon-needs-to-know",totalDownloads:5698,totalCrossrefCites:5,totalDimensionsCites:6,abstract:"Performing a smooth and clean sinus surgery goes hand in hand with a perfect understanding of the nasal and paranasal anatomy. Within this chapter, the paranasal and related structures surgical anatomy will be extensively reviewed, with emphasis on the anatomical landmarks and the normal anatomical variations, which have a significant impact on the function, pathology, and surgical procedures of the paranasal sinuses.",book:{id:"5911",slug:"paranasal-sinuses",title:"Paranasal Sinuses",fullTitle:"Paranasal Sinuses"},signatures:"Abdulmalik S. Alsaied",authors:[{id:"199716",title:"Dr.",name:"Abdulmalik",middleName:"Saad",surname:"Alsaied",slug:"abdulmalik-alsaied",fullName:"Abdulmalik Alsaied"}]},{id:"69430",title:"Concurrent Rhinoplasty and Endoscopic Sinus Surgery",slug:"concurrent-rhinoplasty-and-endoscopic-sinus-surgery",totalDownloads:1198,totalCrossrefCites:0,totalDimensionsCites:0,abstract:"Combining rhinoplasty and endoscopic sinus surgery (ESS) was first reported in 1991 by Sheman and Matarasso. Since then, many authors have documented a large series showing the overall efficacy of combining the two procedures. The focus of this manuscript is to document the author’s recent experience with combining rhinoplasty and endoscopic sinus surgery and highlight the changes that have occurred during the author’s 2-years experience. A retrospective data review was performed on 53 (31 females and 22 men, age range 16–55 years) patients who underwent combined rhinoplasty and ESS between January 2016 and December 2018 at Pantai Hospital Kuala Lumpur by the same surgeon. The mean age was 31.8 years. All patients had severe nasal obstruction with chronic rhinosinusitis and were followed up for a minimum of 6 months post-surgery and underwent ENT workup, which included history, office rigid endoscopy, CT scans of paranasal sinuses and preoperative photography. Initially, the ESS was performed followed by the open rhinoplasty with or without osteotomy. The ESS consisted of middle turbinate reduction [15/53 (28.3%)], maxillary antrostomy [36/53 (67.9%)], ethmoidectomy [38/53 (71.6%)], frontal sinusotomy [7/53 (13.2%)], and sphenoidotomy [9/53 (16.9%)]. Most of the sinus symptoms resolved postoperatively with 47 (88.6%) of 53 patients describing their improvement as significant. Fifty (94.3%) of 53 patients stated that they would recommend the concurrent procedure. The benefits of these advances are illustrated by a review of the literature with good results (functional and cosmetic) and minimal complications.",book:{id:"7062",slug:"rhinosinusitis",title:"Rhinosinusitis",fullTitle:"Rhinosinusitis"},signatures:"Balwant Singh Gendeh",authors:[{id:"67669",title:null,name:"Balwant Singh",middleName:null,surname:"Gendeh",slug:"balwant-singh-gendeh",fullName:"Balwant Singh Gendeh"}]},{id:"49574",title:"Classification of Hearing Loss",slug:"classification-of-hearing-loss",totalDownloads:5385,totalCrossrefCites:9,totalDimensionsCites:13,abstract:"Hearing loss is the partial or total inability to hear sound in one or both ears. People with hearing loss make up a significant 5.3% of the world’s population. The audiogram is an important tool used to determine the degree and type of hearing loss. This chapter presents hearing loss classification, which can aid in clinical diagnosis and help in finding appropriate therapeutic management. Hearing loss is classified based on ear anatomy, type of hearing loss, degree of the disease, and configuration of the audiogram. When the hearing loss is fully characterized, appropriate medical intervention can be assigned.",book:{id:"4654",slug:"update-on-hearing-loss",title:"Update On Hearing Loss",fullTitle:"Update On Hearing Loss"},signatures:"Waleed B. Alshuaib, Jasem M. Al-Kandari and Sonia M. Hasan",authors:[{id:"174550",title:"Prof.",name:"Waleed",middleName:null,surname:"Alshuaib",slug:"waleed-alshuaib",fullName:"Waleed Alshuaib"},{id:"174551",title:"MSc.",name:"Jasim",middleName:null,surname:"Al-Kandari",slug:"jasim-al-kandari",fullName:"Jasim Al-Kandari"},{id:"174552",title:"Dr.",name:"Sonia",middleName:null,surname:"Hasan",slug:"sonia-hasan",fullName:"Sonia Hasan"}]},{id:"56237",title:"Caffeine and Meniere’s Disease",slug:"caffeine-and-meniere-s-disease",totalDownloads:1760,totalCrossrefCites:0,totalDimensionsCites:0,abstract:"Meniere’s disease is characterized by recurrent vertigo, fluctuating hearing loss, and persistent tinnitus. Caffeine consumption in modern society is a widespread and culturally accepted habit; however, there is no consensus about its mechanism of action in various organs and systems, including the auditory and vestibular. The few clinical studies have shown that abstention from caffeine has little effect in patients with Meniere’s disease, both in relation to vertigo, tinnitus and hearing loss.",book:{id:"5454",slug:"up-to-date-on-meniere-s-disease",title:"Up to Date on Meniere's Disease",fullTitle:"Up to Date on Meniere's Disease"},signatures:"Alleluia Lima Losno Ledesma, Monique Antunes de Souza\nChelminski Barreto and Carlos Augusto Costa Pires de Oliveira",authors:[{id:"68849",title:"Prof.",name:"Carlos Augusto C. P.",middleName:null,surname:"Oliveira",slug:"carlos-augusto-c.-p.-oliveira",fullName:"Carlos Augusto C. P. Oliveira"},{id:"175482",title:"Dr.",name:"Monique",middleName:null,surname:"Barreto",slug:"monique-barreto",fullName:"Monique Barreto"},{id:"194400",title:"Dr.",name:"Alleluia",middleName:"Lima",surname:"Losno Ledesma",slug:"alleluia-losno-ledesma",fullName:"Alleluia Losno Ledesma"}]}],onlineFirstChaptersFilter:{topicId:"192",limit:6,offset:0},onlineFirstChaptersCollection:[{id:"82305",title:"Nonreceptor Protein Kinases and Phosphatases Necessary for Auditory Function",slug:"nonreceptor-protein-kinases-and-phosphatases-necessary-for-auditory-function",totalDownloads:11,totalDimensionsCites:0,doi:"10.5772/intechopen.105425",abstract:"Phosphorylation is one of the most common posttranslational protein modifications. It has multiple roles in cell signaling during development as well as for maintenance of diverse functions of an organism. Protein kinases and phosphatases control phosphorylation and play critical roles in cellular processes from cell birth to cell death. Discovery of hearing-loss-associated gene variants in humans and the study of animal models have identified a crucial role of a plethora of protein phosphatases and kinases in the inner ear. In this review, those nonreceptor kinases or phosphatases are discussed, which are encoded by genes implicated in causing inherited hearing loss in humans or in mouse mutants. These studies have served to highlight the essential roles of protein kinases and phosphatases pathways to the function of the auditory system. However, the inner-ear-specific substrates for most of these enzymes remain to be discovered, as do the mechanisms of disease due to the variants in the genes that encode these proteins.",book:{id:"11232",title:"Auditory System - Function and Disorders",coverURL:"https://cdn.intechopen.com/books/images_new/11232.jpg"},signatures:"Sadaf Naz"},{id:"82266",title:"Structure and Physiology of Human Ear Involved in Hearing",slug:"structure-and-physiology-of-human-ear-involved-in-hearing",totalDownloads:12,totalDimensionsCites:0,doi:"10.5772/intechopen.105466",abstract:"Hearing is the fundamental sense based on the normal functioning of the hearing organ “the ear,” which plays a vital role in social interaction and the ability of learning. The human ear is divided into three parts: the outer, middle, and inner ear. Defects in outer and middle ear can cause conductive hearing loss, while the defective inner ear may lead to sensorineural hearing loss. So, it is important to study the structure and physiology of the human ear. When a sound of particular frequency enters the outer ear, it passes through the auditory canal and strikes the tympanic membrane. It vibrates and passes these vibrations to three ossicles present in the middle ear. The ossicles amplify the vibrations of sound and send them to the cochlea in the inner ear. Cochlea contains organ of Corti, which converts these vibrations into electrical signals by its hair cells. The neural signals in turn are interpreted by the brain, which one can hear and understand. The aim of this chapter is to review the basic structure and physiology of different parts of the human ear that are involved in the hearing process.",book:{id:"11232",title:"Auditory System - Function and Disorders",coverURL:"https://cdn.intechopen.com/books/images_new/11232.jpg"},signatures:"Alishbah Sheikh, Bint-e-Zainab, Kanwal Shabbir and Ayesha Imtiaz"},{id:"82244",title:"A Short Overview on Hearing Loss and Related Auditory Defects",slug:"a-short-overview-on-hearing-loss-and-related-auditory-defects",totalDownloads:9,totalDimensionsCites:0,doi:"10.5772/intechopen.105222",abstract:"Hearing is the ability of a person to recognize sound in the surroundings and it makes communication possible. Ear is the human organ serving as a transducer that perceives signals from the environment and converts it into detectable forms for interpretation by the brain. The auditory system is among one of the most highly studied systems. Researchers have described the physiological function of the system in detail but due to its complexity, the genetic mechanisms and genes implicated in auditory function are still being revealed. Numerous studies on the genetics of hearing indicate hearing loss as one of the most common and prevalent disorders as it affects approximately five million people worldwide. Besides hearing loss, there are several other pathologies of auditory system which are common and have an established genetic basis. In this chapter, we will introduce the genetics of some common auditory pathologies including syndromic and non-syndromic hearing loss, auditory neuropathy, age-related hearing loss, and tinnitus. These understandings will 1 day lead to better diagnosis, management, and cures.",book:{id:"11232",title:"Auditory System - Function and Disorders",coverURL:"https://cdn.intechopen.com/books/images_new/11232.jpg"},signatures:"Hina Khan, Hafiza Idrees, Zunaira Munir and Memoona Ramzan"},{id:"81485",title:"Hearing Restoration through Optical Wireless Cochlear Implants",slug:"hearing-restoration-through-optical-wireless-cochlear-implants",totalDownloads:25,totalDimensionsCites:0,doi:"10.5772/intechopen.104622",abstract:"In this chapter, we present two novel optical wireless-based cochlear implant architectures: (i) optical wireless cochlear implant (OWCI) and (ii) all-optical cochlear implant (AOCI). Both the architectures aim to decisively improve the reliability and energy efficiency of hearing restoration devices. To provide design and development guidelines, we document their main components, discuss the particularities of the transdermal optical channel, and provide the analytical framework for their accurate modeling. Building upon this framework, we extract closed-form formulas that quantify the communication, the stimulation, and the overall performance. An overall comparison of OWCI and AOCI, as well as conventional cochlear implants, accompanied by future research directions summarizes this chapter. Our findings reveal that both the OWCI and the AOCI outperform conventional cochlear implant approaches; thus, they are identified as promising architectures for the next generation of cochlear implants.",book:{id:"11232",title:"Auditory System - Function and Disorders",coverURL:"https://cdn.intechopen.com/books/images_new/11232.jpg"},signatures:"Stylianos E. Trevlakis, Alexandros-Apostolos A. Boulogeorgos and George K. Karagiannidis"},{id:"80337",title:"Short-Latency Evoked Potentials of the Human Auditory System",slug:"short-latency-evoked-potentials-of-the-human-auditory-system",totalDownloads:55,totalDimensionsCites:0,doi:"10.5772/intechopen.102039",abstract:"Auditory Brainstem Responses (ABR) are short-latency electric potentials from the auditory nervous system that can be evoked by presenting transient acoustic stimuli to the ear. Sources of the ABR are the auditory nerve and brainstem auditory nuclei. Clinical application of ABRs includes identification of the site of lesion in retrocochlear hearing loss, establishing functional integrity of the auditory nerve, and objective audiometry. Recording of ABR requires a measurement setup with a high-quality amplifier with adequate filtering and low skin-electrode impedance to reduce non-physiological interference. Furthermore, signal averaging and artifact rejection are essential tools for obtaining a good signal-to-noise ratio. Comparing latencies for different peaks at different stimulus intensities allows the determination of hearing threshold, location of the site of lesion, and establishment of neural integrity. Audiological assessment of infants who are referred after failing hearing screening relies on accurate estimation of hearing thresholds. Frequency-specific ABR using tone-burst stimuli is a clinically feasible method for this. Appropriate correction factors should be applied to estimate the hearing threshold from the ABR threshold. Whenever possible, obtained thresholds should be confirmed with behavioral testing. The Binaural Interaction Component of the ABR provides important information regarding binaural processing in the brainstem.",book:{id:"11232",title:"Auditory System - Function and Disorders",coverURL:"https://cdn.intechopen.com/books/images_new/11232.jpg"},signatures:"Gijsbert van Zanten, Huib Versnel, Nathan van der Stoep, Wiepke Koopmans and Alex Hoetink"},{id:"80409",title:"Precocious Auditory Evoked Potential Recording with Free-Field Stimulus",slug:"precocious-auditory-evoked-potential-recording-with-free-field-stimulus",totalDownloads:65,totalDimensionsCites:0,doi:"10.5772/intechopen.102569",abstract:"The aim of this study is to determine the thresholds of normality in the recording of precocious auditory evoked potentials with free-field stimulation and to compare them with conventional stimulation with insertion headphones. For this purpose, we have carried out a case series study of children with normal hearing stimulated with insertion headphones, who underwent Auditory Brainstem Response (ABR) and Auditory Steady-State Response (ASSR) with free-field stimuli. Fifty-four ears with normal criteria of children between 6 months and 24 months of age were assessed. The latencies found with free-field stimulation in ABR were significantly longer than the latencies with insert earphone stimulation (p<0.05), and no differences were found in the inter-latencies. No significant differences were found in the thresholds of the ASSR response. We conclude that the ABR thresholds obtained in the free-field correspond to the delay due to the distance of the sound source to the eardrum and, therefore, are superimposable, being applicable to patients where it is not possible to stimulate with insert phones.",book:{id:"11232",title:"Auditory System - Function and Disorders",coverURL:"https://cdn.intechopen.com/books/images_new/11232.jpg"},signatures:"Juan Bautista Calero del Castillo, Alberto Guillén Martínez and Francisco García Purriños"}],onlineFirstChaptersTotal:9},preDownload:{success:null,errors:{}},subscriptionForm:{success:null,errors:{}},aboutIntechopen:{},privacyPolicy:{},peerReviewing:{},howOpenAccessPublishingWithIntechopenWorks:{},sponsorshipBooks:{sponsorshipBooks:[],offset:8,limit:8,total:0},allSeries:{pteSeriesList:[{id:"14",title:"Artificial Intelligence",numberOfPublishedBooks:9,numberOfPublishedChapters:90,numberOfOpenTopics:6,numberOfUpcomingTopics:0,issn:"2633-1403",doi:"10.5772/intechopen.79920",isOpenForSubmission:!0},{id:"7",title:"Biomedical Engineering",numberOfPublishedBooks:12,numberOfPublishedChapters:107,numberOfOpenTopics:3,numberOfUpcomingTopics:0,issn:"2631-5343",doi:"10.5772/intechopen.71985",isOpenForSubmission:!0}],lsSeriesList:[{id:"11",title:"Biochemistry",numberOfPublishedBooks:33,numberOfPublishedChapters:330,numberOfOpenTopics:4,numberOfUpcomingTopics:0,issn:"2632-0983",doi:"10.5772/intechopen.72877",isOpenForSubmission:!0},{id:"25",title:"Environmental Sciences",numberOfPublishedBooks:1,numberOfPublishedChapters:19,numberOfOpenTopics:4,numberOfUpcomingTopics:0,issn:"2754-6713",doi:"10.5772/intechopen.100362",isOpenForSubmission:!0},{id:"10",title:"Physiology",numberOfPublishedBooks:14,numberOfPublishedChapters:145,numberOfOpenTopics:4,numberOfUpcomingTopics:0,issn:"2631-8261",doi:"10.5772/intechopen.72796",isOpenForSubmission:!0}],hsSeriesList:[{id:"3",title:"Dentistry",numberOfPublishedBooks:9,numberOfPublishedChapters:139,numberOfOpenTopics:2,numberOfUpcomingTopics:0,issn:"2631-6218",doi:"10.5772/intechopen.71199",isOpenForSubmission:!0},{id:"6",title:"Infectious Diseases",numberOfPublishedBooks:13,numberOfPublishedChapters:122,numberOfOpenTopics:4,numberOfUpcomingTopics:0,issn:"2631-6188",doi:"10.5772/intechopen.71852",isOpenForSubmission:!0},{id:"13",title:"Veterinary Medicine and Science",numberOfPublishedBooks:11,numberOfPublishedChapters:112,numberOfOpenTopics:3,numberOfUpcomingTopics:0,issn:"2632-0517",doi:"10.5772/intechopen.73681",isOpenForSubmission:!0}],sshSeriesList:[{id:"22",title:"Business, Management and Economics",numberOfPublishedBooks:1,numberOfPublishedChapters:21,numberOfOpenTopics:3,numberOfUpcomingTopics:0,issn:"2753-894X",doi:"10.5772/intechopen.100359",isOpenForSubmission:!0},{id:"23",title:"Education and Human Development",numberOfPublishedBooks:0,numberOfPublishedChapters:10,numberOfOpenTopics:1,numberOfUpcomingTopics:1,issn:null,doi:"10.5772/intechopen.100360",isOpenForSubmission:!0},{id:"24",title:"Sustainable Development",numberOfPublishedBooks:1,numberOfPublishedChapters:19,numberOfOpenTopics:5,numberOfUpcomingTopics:0,issn:"2753-6580",doi:"10.5772/intechopen.100361",isOpenForSubmission:!0}],testimonialsList:[{id:"13",text:"The collaboration with and support of the technical staff of IntechOpen is fantastic. The whole process of submitting an article and editing of the submitted article goes extremely smooth and fast, the number of reads and downloads of chapters is high, and the contributions are also frequently cited.",author:{id:"55578",name:"Antonio",surname:"Jurado-Navas",institutionString:null,profilePictureURL:"https://s3.us-east-1.amazonaws.com/intech-files/0030O00002bRisIQAS/Profile_Picture_1626166543950",slug:"antonio-jurado-navas",institution:{id:"720",name:"University of Malaga",country:{id:null,name:"Spain"}}}},{id:"6",text:"It is great to work with the IntechOpen to produce a worthwhile collection of research that also becomes a great educational resource and guide for future research endeavors.",author:{id:"259298",name:"Edward",surname:"Narayan",institutionString:null,profilePictureURL:"https://mts.intechopen.com/storage/users/259298/images/system/259298.jpeg",slug:"edward-narayan",institution:{id:"3",name:"University of Queensland",country:{id:null,name:"Australia"}}}}]},series:{item:{id:"13",title:"Veterinary Medicine and Science",doi:"10.5772/intechopen.73681",issn:"2632-0517",scope:"Paralleling similar advances in the medical field, astounding advances occurred in Veterinary Medicine and Science in recent decades. These advances have helped foster better support for animal health, more humane animal production, and a better understanding of the physiology of endangered species to improve the assisted reproductive technologies or the pathogenesis of certain diseases, where animals can be used as models for human diseases (like cancer, degenerative diseases or fertility), and even as a guarantee of public health. Bridging Human, Animal, and Environmental health, the holistic and integrative “One Health” concept intimately associates the developments within those fields, projecting its advancements into practice. This book series aims to tackle various animal-related medicine and sciences fields, providing thematic volumes consisting of high-quality significant research directed to researchers and postgraduates. It aims to give us a glimpse into the new accomplishments in the Veterinary Medicine and Science field. By addressing hot topics in veterinary sciences, we aim to gather authoritative texts within each issue of this series, providing in-depth overviews and analysis for graduates, academics, and practitioners and foreseeing a deeper understanding of the subject. Forthcoming texts, written and edited by experienced researchers from both industry and academia, will also discuss scientific challenges faced today in Veterinary Medicine and Science. 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After almost 32 years of teaching at the University of Trás-os-Montes and Alto Douro, she recently moved to the University of Évora, Department of Veterinary Medicine, where she teaches in the field of Animal Reproduction and Clinics. Her primary research areas include the molecular markers of the endometrial cycle and the embryo–maternal interaction, including oxidative stress and the reproductive physiology and disorders of sexual development, besides the molecular determinants of male and female fertility. She often supervises students preparing their master's or doctoral theses. She is also a frequent referee for various journals.",institutionString:null,institution:{name:"University of Évora",institutionURL:null,country:{name:"Portugal"}}},editorTwo:null,editorThree:null},subseries:{paginationCount:5,paginationItems:[{id:"19",title:"Animal Science",coverUrl:"https://cdn.intechopen.com/series_topics/covers/19.jpg",editor:{id:"259298",title:"Dr.",name:"Edward",middleName:null,surname:"Narayan",slug:"edward-narayan",fullName:"Edward Narayan",profilePictureURL:"https://mts.intechopen.com/storage/users/259298/images/system/259298.jpeg",biography:"Dr. Edward Narayan graduated with Ph.D. degree in Biology from the University of the South Pacific and pioneered non-invasive reproductive and stress endocrinology tools for amphibians - the novel development and validation of non-invasive enzyme immunoassays for the evaluation of reproductive hormonal cycle and stress hormone responses to environmental stressors. \nDr. Narayan leads the Stress Lab (Comparative Physiology and Endocrinology) at the University of Queensland. A dynamic career research platform which is based on the thematic areas of comparative vertebrate physiology, stress endocrinology, reproductive endocrinology, animal health and welfare, and conservation biology. \nEdward has supervised 40 research students and published over 60 peer reviewed research.",institutionString:null,institution:{name:"University of Queensland",institutionURL:null,country:{name:"Australia"}}},editorTwo:null,editorThree:null,editorialBoard:[{id:"258334",title:"Dr.",name:"Carlos Eduardo",middleName:null,surname:"Fonseca-Alves",slug:"carlos-eduardo-fonseca-alves",fullName:"Carlos Eduardo Fonseca-Alves",profilePictureURL:"https://mts.intechopen.com/storage/users/258334/images/system/258334.jpg",institutionString:null,institution:{name:"Universidade Paulista",institutionURL:null,country:{name:"Brazil"}}},{id:"191123",title:"Dr.",name:"Juan José",middleName:null,surname:"Valdez-Alarcón",slug:"juan-jose-valdez-alarcon",fullName:"Juan José Valdez-Alarcón",profilePictureURL:"https://s3.us-east-1.amazonaws.com/intech-files/0030O00002bSBfcQAG/Profile_Picture_1631354558068",institutionString:"Universidad Michoacana de San Nicolás de Hidalgo",institution:{name:"Universidad Michoacana de San Nicolás de Hidalgo",institutionURL:null,country:{name:"Mexico"}}},{id:"161556",title:"Dr.",name:"Maria Dos Anjos",middleName:null,surname:"Pires",slug:"maria-dos-anjos-pires",fullName:"Maria Dos Anjos Pires",profilePictureURL:"https://s3.us-east-1.amazonaws.com/intech-files/0030O00002bS8q2QAC/Profile_Picture_1633432838418",institutionString:null,institution:{name:"University of Trás-os-Montes and Alto Douro",institutionURL:null,country:{name:"Portugal"}}},{id:"209839",title:"Dr.",name:"Marina",middleName:null,surname:"Spinu",slug:"marina-spinu",fullName:"Marina Spinu",profilePictureURL:"https://s3.us-east-1.amazonaws.com/intech-files/0030O00002bRLXpQAO/Profile_Picture_1630044895475",institutionString:null,institution:{name:"University of Agricultural Sciences and Veterinary Medicine of Cluj-Napoca",institutionURL:null,country:{name:"Romania"}}},{id:"92185",title:"Dr.",name:"Sara",middleName:null,surname:"Savic",slug:"sara-savic",fullName:"Sara Savic",profilePictureURL:"https://mts.intechopen.com/storage/users/92185/images/system/92185.jfif",institutionString:'Scientific Veterinary Institute "Novi Sad"',institution:{name:'Scientific Veterinary Institute "Novi Sad"',institutionURL:null,country:{name:"Serbia"}}}]},{id:"20",title:"Animal Nutrition",coverUrl:"https://cdn.intechopen.com/series_topics/covers/20.jpg",editor:{id:"175967",title:"Dr.",name:"Manuel",middleName:null,surname:"Gonzalez Ronquillo",slug:"manuel-gonzalez-ronquillo",fullName:"Manuel Gonzalez Ronquillo",profilePictureURL:"https://mts.intechopen.com/storage/users/175967/images/system/175967.png",biography:"Dr. Manuel González Ronquillo obtained his doctorate degree from the University of Zaragoza, Spain, in 2001. He is a research professor at the Faculty of Veterinary Medicine and Animal Husbandry, Autonomous University of the State of Mexico. He is also a level-2 researcher. He received a Fulbright-Garcia Robles fellowship for a postdoctoral stay at the US Dairy Forage Research Center, Madison, Wisconsin, USA in 2008–2009. He received grants from Alianza del Pacifico for a stay at the University of Magallanes, Chile, in 2014, and from Consejo Nacional de Ciencia y Tecnología (CONACyT) to work in the Food and Agriculture Organization’s Animal Production and Health Division (AGA), Rome, Italy, in 2014–2015. He has collaborated with researchers from different countries and published ninety-eight journal articles. 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She is also the Global Harmonization Initiative (GHI)",institutionString:"Australian College of Business & Technology",institution:{name:"Kobe College",institutionURL:null,country:{name:"Japan"}}}]},{type:"book",id:"6820",title:"Keratin",subtitle:null,coverURL:"https://cdn.intechopen.com/books/images_new/6820.jpg",slug:"keratin",publishedDate:"December 19th 2018",editedByType:"Edited by",bookSignature:"Miroslav Blumenberg",hash:"6def75cd4b6b5324a02b6dc0359896d0",volumeInSeries:2,fullTitle:"Keratin",editors:[{id:"31610",title:"Dr.",name:"Miroslav",middleName:null,surname:"Blumenberg",slug:"miroslav-blumenberg",fullName:"Miroslav Blumenberg",profilePictureURL:"https://mts.intechopen.com/storage/users/31610/images/system/31610.jpg",biography:"Miroslav Blumenberg, Ph.D., was born in Subotica and received his BSc in Belgrade, Yugoslavia. He completed his Ph.D. at MIT in Organic Chemistry; he followed up his Ph.D. with two postdoctoral study periods at Stanford University. Since 1983, he has been a faculty member of the RO Perelman Department of Dermatology, NYU School of Medicine, where he is codirector of a training grant in cutaneous biology. Dr. Blumenberg’s research is focused on the epidermis, expression of keratin genes, transcription profiling, keratinocyte differentiation, inflammatory diseases and cancers, and most recently the effects of the microbiome on the skin. He has published more than 100 peer-reviewed research articles and graduated numerous Ph.D. and postdoctoral students.",institutionString:null,institution:{name:"New York University Langone Medical Center",institutionURL:null,country:{name:"United States of America"}}}]},{type:"book",id:"7978",title:"Vitamin A",subtitle:null,coverURL:"https://cdn.intechopen.com/books/images_new/7978.jpg",slug:"vitamin-a",publishedDate:"May 15th 2019",editedByType:"Edited by",bookSignature:"Leila Queiroz Zepka, Veridiana Vera de Rosso and Eduardo Jacob-Lopes",hash:"dad04a658ab9e3d851d23705980a688b",volumeInSeries:3,fullTitle:"Vitamin A",editors:[{id:"261969",title:"Dr.",name:"Leila",middleName:null,surname:"Queiroz Zepka",slug:"leila-queiroz-zepka",fullName:"Leila Queiroz Zepka",profilePictureURL:"https://mts.intechopen.com/storage/users/261969/images/system/261969.png",biography:"Prof. Dr. Leila Queiroz Zepka is currently an associate professor in the Department of Food Technology and Science, Federal University of Santa Maria, Brazil. She has more than fifteen years of teaching and research experience. She has published more than 550 scientific publications/communications, including 15 books, 50 book chapters, 100 original research papers, 380 research communications in national and international conferences, and 12 patents. She is a member of the editorial board of five journals and acts as a reviewer for several national and international journals. Her research interests include microalgal biotechnology with an emphasis on microalgae-based products.",institutionString:"Universidade Federal de Santa Maria",institution:{name:"Universidade Federal de Santa Maria",institutionURL:null,country:{name:"Brazil"}}}]},{type:"book",id:"7953",title:"Bioluminescence",subtitle:"Analytical Applications and Basic Biology",coverURL:"https://cdn.intechopen.com/books/images_new/7953.jpg",slug:"bioluminescence-analytical-applications-and-basic-biology",publishedDate:"September 25th 2019",editedByType:"Edited by",bookSignature:"Hirobumi Suzuki",hash:"3a8efa00b71abea11bf01973dc589979",volumeInSeries:4,fullTitle:"Bioluminescence - Analytical Applications and Basic Biology",editors:[{id:"185746",title:"Dr.",name:"Hirobumi",middleName:null,surname:"Suzuki",slug:"hirobumi-suzuki",fullName:"Hirobumi Suzuki",profilePictureURL:"https://mts.intechopen.com/storage/users/185746/images/system/185746.png",biography:"Dr. Hirobumi Suzuki received his Ph.D. in 1997 from Tokyo Metropolitan University, Japan, where he studied firefly phylogeny and the evolution of mating systems. 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(2002), and Ph.D. (2008) degrees in Veterinary Medicine, Animal Pathology and Veterinary Microbiology from College of Veterinary Medicine, Addis Ababa University, Ethiopia; College of Veterinary Medicine, Utrecht University, the Netherlands and Western College of Veterinary Medicine, University of Saskatchewan, Canada respectively. He did his Postdoctoral training in microbial pathogenesis (2009 - 2015) in the Department of Animal Science, the University of Tennessee, Institute of Agriculture, Knoxville, Tennessee. Dr. Kerro Dego’s research focuses on the prevention and control of infectious diseases of farm animals, particularly mastitis, improving dairy food safety, and mitigation of antimicrobial resistance. Dr. Kerro Dego has extensive experience in studying the pathogenesis of bacterial infections, identification of virulence factors, and vaccine development and efficacy testing against major bacterial mastitis pathogens. Dr. Kerro Dego conducted numerous controlled experimental and field vaccine efficacy studies, vaccination, and evaluation of immunological responses in several species of animals, including rodents (mice) and large animals (bovine and ovine).",institutionString:"University of Tennessee at Knoxville",institution:{name:"University of Tennessee at Knoxville",country:{name:"United States of America"}}},{id:"251314",title:"Dr.",name:"Juan Carlos",middleName:null,surname:"Gardón Poggi",slug:"juan-carlos-gardon-poggi",fullName:"Juan Carlos Gardón Poggi",position:null,profilePictureURL:"https://mts.intechopen.com/storage/users/251314/images/system/251314.jpeg",biography:"Juan Carlos Gardón Poggi received University degree from the Faculty of Agrarian Science in Argentina, in 1983. Also he received Masters Degree and PhD from Córdoba University, Spain. He is currently a Professor at the Catholic University of Valencia San Vicente Mártir, at the Department of Medicine and Animal Surgery. He teaches diverse courses in the field of Animal Reproduction and he is the Director of the Veterinary Farm. He also participates in academic postgraduate activities at the Veterinary Faculty of Murcia University, Spain. His research areas include animal physiology, physiology and biotechnology of reproduction either in males or females, the study of gametes under in vitro conditions and the use of ultrasound as a complement to physiological studies and development of applied biotechnologies. Routinely, he supervises students preparing their doctoral, master thesis or final degree projects.",institutionString:null,institution:{name:"Valencia Catholic University Saint Vincent Martyr",country:{name:"Spain"}}},{id:"309529",title:"Dr.",name:"Albert",middleName:null,surname:"Rizvanov",slug:"albert-rizvanov",fullName:"Albert Rizvanov",position:null,profilePictureURL:"https://mts.intechopen.com/storage/users/309529/images/9189_n.jpg",biography:'Albert A. Rizvanov is a Professor and Director of the Center for Precision and Regenerative Medicine at the Institute of Fundamental Medicine and Biology, Kazan Federal University (KFU), Russia. He is the Head of the Center of Excellence “Regenerative Medicine” and Vice-Director of Strategic Academic Unit \\"Translational 7P Medicine\\". Albert completed his Ph.D. at the University of Nevada, Reno, USA and Dr.Sci. at KFU. He is a corresponding member of the Tatarstan Academy of Sciences, Russian Federation. Albert is an author of more than 300 peer-reviewed journal articles and 22 patents. He has supervised 11 Ph.D. and 2 Dr.Sci. dissertations. Albert is the Head of the Dissertation Committee on Biochemistry, Microbiology, and Genetics at KFU.\nORCID https://orcid.org/0000-0002-9427-5739\nWebsite https://kpfu.ru/Albert.Rizvanov?p_lang=2',institutionString:"Kazan Federal University",institution:{name:"Kazan Federal University",country:{name:"Russia"}}},{id:"210551",title:"Dr.",name:"Arbab",middleName:null,surname:"Sikandar",slug:"arbab-sikandar",fullName:"Arbab Sikandar",position:null,profilePictureURL:"https://mts.intechopen.com/storage/users/210551/images/system/210551.jpg",biography:"Dr. Arbab Sikandar, PhD, M. Phil, DVM was born on April 05, 1981. He is currently working at the College of Veterinary & Animal Sciences as an Assistant Professor. He previously worked as a lecturer at the same University. \nHe is a Member/Secretory of Ethics committee (No. CVAS-9377 dated 18-04-18), Member of the QEC committee CVAS, Jhang (Regr/Gen/69/873, dated 26-10-2017), Member, Board of studies of Department of Basic Sciences (No. CVAS. 2851 Dated. 12-04-13, and No. CVAS, 9024 dated 20/11/17), Member of Academic Committee, CVAS, Jhang (No. CVAS/2004, Dated, 25-08-12), Member of the technical committee (No. CVAS/ 4085, dated 20,03, 2010 till 2016).\n\nDr. Arbab Sikandar contributed in five days hands-on-training on Histopathology at the Department of Pathology, UVAS from 12-16 June 2017. He received a Certificate of appreciation for contributions for Popularization of Science and Technology in the Society on 17-11-15. He was the resource person in the lecture series- ‘scientific writing’ at the Department of Anatomy and Histology, UVAS, Lahore on 29th October 2015. He won a full fellowship as a principal candidate for the year 2015 in the field of Agriculture, EICA, Egypt with ref. to the Notification No. 12(11) ACS/Egypt/2014 from 10 July 2015 to 25th September 2015.; he received a grant of Rs. 55000/- as research incentives from Director, Advanced Studies and Research, UVAS, Lahore upon publications of research papers in IF Journals (DR/215, dated 19-5-2014.. He obtained his PhD by winning a HEC Pakistan indigenous Scholarship, ‘Ph.D. fellowship for 5000 scholars – Phase II’ (2av1-147), 17-6/HEC/HRD/IS-II/12, November 15, 2012. \n\nDr. Sikandar is a member of numerous societies: Registered Veterinary Medical Practitioner (life member) and Registered Veterinary Medical Faculty of Pakistan Veterinary Medical Council. The Registration code of PVMC is RVMP/4298 and RVMF/ 0102.; Life member of the University of Veterinary and Animal Sciences, Lahore, Alumni Association with S# 664, dated: 6-4-12. ; Member 'Vets Care Organization Pakistan” with Reference No. VCO-605-149, dated 05-04-06. :Member 'Vet Crescent” (Society of Animal Health and Production), UVAS, Lahore.",institutionString:"University of Veterinary & Animal Science",institution:{name:"University of Veterinary and Animal Sciences",country:{name:"Pakistan"}}},{id:"311663",title:"Dr.",name:"Prasanna",middleName:null,surname:"Pal",slug:"prasanna-pal",fullName:"Prasanna Pal",position:null,profilePictureURL:"https://mts.intechopen.com/storage/users/311663/images/13261_n.jpg",biography:null,institutionString:null,institution:{name:"National Dairy Research Institute",country:{name:"India"}}},{id:"202192",title:"Dr.",name:"Catrin",middleName:null,surname:"Rutland",slug:"catrin-rutland",fullName:"Catrin Rutland",position:null,profilePictureURL:"https://mts.intechopen.com/storage/users/202192/images/system/202192.png",biography:"Catrin Rutland is an Associate Professor of Anatomy and Developmental Genetics at the University of Nottingham, UK. She obtained a BSc from the University of Derby, England, a master’s degree from Technische Universität München, Germany, and a Ph.D. from the University of Nottingham. She undertook a post-doctoral research fellowship in the School of Medicine before accepting tenure in Veterinary Medicine and Science. Dr. Rutland also obtained an MMedSci (Medical Education) and a Postgraduate Certificate in Higher Education (PGCHE). She is the author of more than sixty peer-reviewed journal articles, twelve books/book chapters, and more than 100 research abstracts in cardiovascular biology and oncology. She is a board member of the European Association of Veterinary Anatomists, Fellow of the Anatomical Society, and Senior Fellow of the Higher Education Academy. Dr. Rutland has also written popular science books for the public. https://orcid.org/0000-0002-2009-4898. www.nottingham.ac.uk/vet/people/catrin.rutland",institutionString:null,institution:{name:"University of Nottingham",country:{name:"United Kingdom"}}},{id:"283315",title:"Prof.",name:"Samir",middleName:null,surname:"El-Gendy",slug:"samir-el-gendy",fullName:"Samir El-Gendy",position:null,profilePictureURL:"https://s3.us-east-1.amazonaws.com/intech-files/0030O00002bRduYQAS/Profile_Picture_1606215849748",biography:"Samir El-Gendy is a Professor of anatomy and embryology at the faculty of veterinary medicine, Alexandria University, Egypt. Samir obtained his PhD in veterinary science in 2007 from the faculty of veterinary medicine, Alexandria University and has been a professor since 2017. Samir is an author on 24 articles at Scopus and 12 articles within local journals and 2 books/book chapters. His research focuses on applied anatomy, imaging techniques and computed tomography. Samir worked as a member of different local projects on E-learning and he is a board member of the African Association of Veterinary Anatomists and of anatomy societies and as an associated author at local and international journals. Orcid: https://orcid.org/0000-0002-6180-389X",institutionString:null,institution:{name:"Alexandria University",country:{name:"Egypt"}}},{id:"246149",title:"Dr.",name:"Valentina",middleName:null,surname:"Kubale",slug:"valentina-kubale",fullName:"Valentina Kubale",position:null,profilePictureURL:"https://mts.intechopen.com/storage/users/246149/images/system/246149.jpg",biography:"Valentina Kubale is Associate Professor of Veterinary Medicine at the Veterinary Faculty, University of Ljubljana, Slovenia. Since graduating from the Veterinary faculty she obtained her PhD in 2007, performed collaboration with the Department of Pharmacology, University of Copenhagen, Denmark. She continued as a post-doctoral fellow at the University of Copenhagen with a Lundbeck foundation fellowship. She is the editor of three books and author/coauthor of 23 articles in peer-reviewed scientific journals, 16 book chapters, and 68 communications at scientific congresses. Since 2008 she has been the Editor Assistant for the Slovenian Veterinary Research journal. She is a member of Slovenian Biochemical Society, The Endocrine Society, European Association of Veterinary Anatomists and Society for Laboratory Animals, where she is board member.",institutionString:"University of Ljubljana",institution:{name:"University of Ljubljana",country:{name:"Slovenia"}}},{id:"258334",title:"Dr.",name:"Carlos Eduardo",middleName:null,surname:"Fonseca-Alves",slug:"carlos-eduardo-fonseca-alves",fullName:"Carlos Eduardo Fonseca-Alves",position:null,profilePictureURL:"https://mts.intechopen.com/storage/users/258334/images/system/258334.jpg",biography:"Dr. Fonseca-Alves earned his DVM from Federal University of Goias – UFG in 2008. He completed an internship in small animal internal medicine at UPIS university in 2011, earned his MSc in 2013 and PhD in 2015 both in Veterinary Medicine at Sao Paulo State University – UNESP. Dr. Fonseca-Alves currently serves as an Assistant Professor at Paulista University – UNIP teaching small animal internal medicine.",institutionString:null,institution:{name:"Universidade Paulista",country:{name:"Brazil"}}},{id:"245306",title:"Dr.",name:"María Luz",middleName:null,surname:"Garcia Pardo",slug:"maria-luz-garcia-pardo",fullName:"María Luz Garcia Pardo",position:null,profilePictureURL:"https://mts.intechopen.com/storage/users/245306/images/system/245306.png",biography:"María de la Luz García Pardo is an agricultural engineer from Universitat Politècnica de València, Spain. She has a Ph.D. in Animal Genetics. Currently, she is a lecturer at the Agrofood Technology Department of Miguel Hernández University, Spain. Her research is focused on genetics and reproduction in rabbits. The major goal of her research is the genetics of litter size through novel methods such as selection by the environmental sensibility of litter size, with forays into the field of animal welfare by analysing the impact on the susceptibility to diseases and stress of the does. Details of her publications can be found at https://orcid.org/0000-0001-9504-8290.",institutionString:null,institution:{name:"Miguel Hernandez University",country:{name:"Spain"}}},{id:"350704",title:"M.Sc.",name:"Camila",middleName:"Silva Costa",surname:"Ferreira",slug:"camila-ferreira",fullName:"Camila Ferreira",position:null,profilePictureURL:"https://mts.intechopen.com/storage/users/350704/images/17280_n.jpg",biography:"Graduated in Veterinary Medicine at the Fluminense Federal University, specialist in Equine Reproduction at the Brazilian Veterinary Institute (IBVET) and Master in Clinical Veterinary Medicine and Animal Reproduction at the Fluminense Federal University. She has experience in analyzing zootechnical indices in dairy cattle and organizing events related to Veterinary Medicine through extension grants. I have experience in the field of diagnostic imaging and animal reproduction in veterinary medicine through monitoring and scientific initiation scholarships. I worked at the Equus Central Reproduction Equine located in Santo Antônio de Jesus – BA in the 2016/2017 breeding season. I am currently a doctoral student with a scholarship from CAPES of the Postgraduate Program in Veterinary Medicine (Pathology and Clinical Sciences) at the Federal Rural University of Rio de Janeiro (UFRRJ) with a research project with an emphasis on equine endometritis.",institutionString:null,institution:null},{id:"41319",title:"Prof.",name:"Lung-Kwang",middleName:null,surname:"Pan",slug:"lung-kwang-pan",fullName:"Lung-Kwang Pan",position:null,profilePictureURL:"https://mts.intechopen.com/storage/users/41319/images/84_n.jpg",biography:null,institutionString:null,institution:null},{id:"125292",title:"Dr.",name:"Katy",middleName:null,surname:"Satué Ambrojo",slug:"katy-satue-ambrojo",fullName:"Katy Satué Ambrojo",position:null,profilePictureURL:"https://mts.intechopen.com/storage/users/125292/images/system/125292.jpeg",biography:"Katy Satué Ambrojo received her Veterinary Medicine degree, Master degree in Equine Technology and doctorate in Veterinary Medicine from the Faculty of Veterinary, CEU-Cardenal Herrera University in Valencia, Spain.Dr. Satué is accredited as a Private University Doctor Professor, Doctor Assistant, and Contracted Doctor by AVAP (Agència Valenciana d'Avaluació i Prospectiva) and currently, as a full professor by ANECA (since January 2022). To date, Katy has taught 22 years in the Department of Animal Medicine and Surgery at the CEU-Cardenal Herrera University in undergraduate courses in Veterinary Medicine (General Pathology, integrated into the Applied Basis of Veterinary Medicine module of the 2nd year, Clinical Equine I of 3rd year, and Equine Clinic II of 4th year). Dr. Satué research activity is in the field of Endocrinology, Hematology, Biochemistry, and Immunology in the Spanish Purebred mare. She has directed 5 Doctoral Theses and 5 Diplomas of Advanced Studies, and participated in 11 research projects as a collaborating researcher. She has written 2 books and 14 book chapters in international publishers related to the area, and 68 scientific publications in international journals. Dr. Satué has attended 63 congresses, participating with 132 communications in international congresses and 19 in national congresses related to the area. Dr. Satué is a scientific reviewer for various prestigious international journals such as Animals, American Journal of Obstetrics and Gynecology, Veterinary Clinical Pathology, Journal of Equine Veterinary Science, Reproduction in Domestic Animals, Research Veterinary Science, Brazilian Journal of Medical and Biological Research, Livestock Production Science and Theriogenology, among others. Since 2014 she has been responsible for the Clinical Analysis Laboratory of the CEU-Cardenal Herrera University Veterinary Clinical Hospital.",institutionString:null,institution:null},{id:"201721",title:"Dr.",name:"Beatrice",middleName:null,surname:"Funiciello",slug:"beatrice-funiciello",fullName:"Beatrice Funiciello",position:null,profilePictureURL:"https://mts.intechopen.com/storage/users/201721/images/11089_n.jpg",biography:"Graduated from the University of Milan in 2011, my post-graduate education included CertAVP modules mainly on equines (dermatology and internal medicine) and a few on small animal (dermatology and anaesthesia) at the University of Liverpool. After a general CertAVP (2015) I gained the designated Certificate in Veterinary Dermatology (2017) after taking the synoptic examination and then applied for the RCVS ADvanced Practitioner status. After that, I completed the Postgraduate Diploma in Veterinary Professional Studies at the University of Liverpool (2018). My main area of work is cross-species veterinary dermatology.",institutionString:null,institution:null},{id:"291226",title:"Dr.",name:"Monica",middleName:null,surname:"Cassel",slug:"monica-cassel",fullName:"Monica Cassel",position:null,profilePictureURL:"https://mts.intechopen.com/storage/users/291226/images/8232_n.jpg",biography:'Degree in Biological Sciences at the Federal University of Mato Grosso with scholarship for Scientific Initiation by FAPEMAT (2008/1) and CNPq (2008/2-2009/2): Project \\"Histological evidence of reproductive activity in lizards of the Manso region, Chapada dos Guimarães, Mato Grosso, Brazil\\". Master\\\'s degree in Ecology and Biodiversity Conservation at Federal University of Mato Grosso with a scholarship by CAPES/REUNI program: Project \\"Reproductive biology of Melanorivulus punctatus\\". PhD\\\'s degree in Science (Cell and Tissue Biology Area) \n at University of Sao Paulo with scholarship granted by FAPESP; Project \\"Development of morphofunctional changes in ovary of Astyanax altiparanae Garutti & Britski, 2000 (Teleostei, Characidae)\\". She has experience in Reproduction of vertebrates and Morphology, with emphasis in Cellular Biology and Histology. She is currently a teacher in the medium / technical level courses at IFMT-Alta Floresta, as well as in the Bachelor\\\'s degree in Animal Science and in the Bachelor\\\'s degree in Business.',institutionString:null,institution:null},{id:"442807",title:"Dr.",name:"Busani",middleName:null,surname:"Moyo",slug:"busani-moyo",fullName:"Busani Moyo",position:null,profilePictureURL:"//cdnintech.com/web/frontend/www/assets/author.svg",biography:null,institutionString:null,institution:{name:"Gwanda State University",country:{name:"Zimbabwe"}}},{id:"439435",title:"Dr.",name:"Feda S.",middleName:null,surname:"Aljaser",slug:"feda-s.-aljaser",fullName:"Feda S. Aljaser",position:null,profilePictureURL:"//cdnintech.com/web/frontend/www/assets/author.svg",biography:null,institutionString:null,institution:{name:"King Saud University",country:{name:"Saudi Arabia"}}},{id:"423023",title:"Dr.",name:"Yosra",middleName:null,surname:"Soltan",slug:"yosra-soltan",fullName:"Yosra Soltan",position:null,profilePictureURL:"//cdnintech.com/web/frontend/www/assets/author.svg",biography:null,institutionString:null,institution:{name:"Alexandria University",country:{name:"Egypt"}}},{id:"349788",title:"Dr.",name:"Florencia Nery",middleName:null,surname:"Sompie",slug:"florencia-nery-sompie",fullName:"Florencia Nery Sompie",position:null,profilePictureURL:"//cdnintech.com/web/frontend/www/assets/author.svg",biography:null,institutionString:null,institution:{name:"Sam Ratulangi University",country:{name:"Indonesia"}}},{id:"428600",title:"MSc.",name:"Adriana",middleName:null,surname:"García-Alarcón",slug:"adriana-garcia-alarcon",fullName:"Adriana García-Alarcón",position:null,profilePictureURL:"//cdnintech.com/web/frontend/www/assets/author.svg",biography:null,institutionString:null,institution:{name:"National Autonomous University of Mexico",country:{name:"Mexico"}}},{id:"428599",title:"MSc.",name:"Gabino",middleName:null,surname:"De La Rosa-Cruz",slug:"gabino-de-la-rosa-cruz",fullName:"Gabino De La Rosa-Cruz",position:null,profilePictureURL:"//cdnintech.com/web/frontend/www/assets/author.svg",biography:null,institutionString:null,institution:{name:"National Autonomous University of Mexico",country:{name:"Mexico"}}},{id:"428601",title:"MSc.",name:"Juan Carlos",middleName:null,surname:"Campuzano-Caballero",slug:"juan-carlos-campuzano-caballero",fullName:"Juan Carlos Campuzano-Caballero",position:null,profilePictureURL:"//cdnintech.com/web/frontend/www/assets/author.svg",biography:null,institutionString:null,institution:{name:"National Autonomous University of Mexico",country:{name:"Mexico"}}}]}},subseries:{item:{id:"19",type:"subseries",title:"Animal Science",keywords:"Animal Science, Animal Biology, Wildlife Species, Domesticated Animals",scope:"The Animal Science topic welcomes research on captive and wildlife species, including domesticated animals. The research resented can consist of primary studies on various animal biology fields such as genetics, nutrition, behavior, welfare, and animal production, to name a few. 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