Behaviors of the individual elements in annealed steels.
\\n\\n
IntechOpen Book Series will also publish a program of research-driven Thematic Edited Volumes that focus on specific areas and allow for a more in-depth overview of a particular subject.
\\n\\nIntechOpen Book Series will be launching regularly to offer our authors and editors exciting opportunities to publish their research Open Access. We will begin by relaunching some of our existing Book Series in this innovative book format, and will expand in 2022 into rapidly growing research fields that are driving and advancing society.
\\n\\nLaunching 2021
\\n\\nArtificial Intelligence, ISSN 2633-1403
\\n\\nVeterinary Medicine and Science, ISSN 2632-0517
\\n\\nBiochemistry, ISSN 2632-0983
\\n\\nBiomedical Engineering, ISSN 2631-5343
\\n\\nInfectious Diseases, ISSN 2631-6188
\\n\\nPhysiology (Coming Soon)
\\n\\nDentistry (Coming Soon)
\\n\\nWe invite you to explore our IntechOpen Book Series, find the right publishing program for you and reach your desired audience in record time.
\\n\\nNote: Edited in October 2021
\\n"}]',published:!0,mainMedia:{caption:"",originalUrl:"/media/original/132"}},components:[{type:"htmlEditorComponent",content:'With the desire to make book publishing more relevant for the digital age and offer innovative Open Access publishing options, we are thrilled to announce the launch of our new publishing format: IntechOpen Book Series.
\n\nDesigned to cover fast-moving research fields in rapidly expanding areas, our Book Series feature a Topic structure allowing us to present the most relevant sub-disciplines. Book Series are headed by Series Editors, and a team of Topic Editors supported by international Editorial Board members. Topics are always open for submissions, with an Annual Volume published each calendar year.
\n\nAfter a robust peer-review process, accepted works are published quickly, thanks to Online First, ensuring research is made available to the scientific community without delay.
\n\nOur innovative Book Series format brings you:
\n\nIntechOpen Book Series will also publish a program of research-driven Thematic Edited Volumes that focus on specific areas and allow for a more in-depth overview of a particular subject.
\n\nIntechOpen Book Series will be launching regularly to offer our authors and editors exciting opportunities to publish their research Open Access. We will begin by relaunching some of our existing Book Series in this innovative book format, and will expand in 2022 into rapidly growing research fields that are driving and advancing society.
\n\nLaunching 2021
\n\nArtificial Intelligence, ISSN 2633-1403
\n\nVeterinary Medicine and Science, ISSN 2632-0517
\n\nBiochemistry, ISSN 2632-0983
\n\nBiomedical Engineering, ISSN 2631-5343
\n\nInfectious Diseases, ISSN 2631-6188
\n\nPhysiology (Coming Soon)
\n\nDentistry (Coming Soon)
\n\nWe invite you to explore our IntechOpen Book Series, find the right publishing program for you and reach your desired audience in record time.
\n\nNote: Edited in October 2021
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These bismuth-based materials have been widely applied in photocatalysis (NOx removal, VOCs purification, CO2 reduction, water splitting, organic pollutants degradation, heavy metals reduction) and electrocatalysis (nitrogen fixation, CO2 reduction, water electrolysis, organic synthesis). The rapid development in this field needs a comprehensive summary to reflect the new advances in recent years. The aim of this project is to invite researchers worldwide to contribute to this field and promote the developments in the synthesis, characterization, structure-property relationship determination, and application of bismuth-based catalysts, proposing organized materials, challenges, and prospects to guide future works. The content of this book could attract broad interest from diverse fields of materials, catalysis, chemistry, environment, medicine, energy, and engineering.
",isbn:"978-1-83768-048-1",printIsbn:"978-1-83768-047-4",pdfIsbn:"978-1-83768-049-8",doi:null,price:0,priceEur:0,priceUsd:0,slug:null,numberOfPages:0,isOpenForSubmission:!0,isSalesforceBook:!1,isNomenclature:!1,hash:"951c872d9d90e13cfe7d97c0af91845e",bookSignature:"Dr. William Wilson Anku",publishedDate:null,coverURL:"https://cdn.intechopen.com/books/images_new/11467.jpg",keywords:"Semiconductor, Synthesis, Morphology, Shape Control, Metal Doping, Surface Modification, Catalysis, Photocatalysis, Photoelectrochemical, Nitrogen Fixation, Energy Conversion, Environmental Remediation",numberOfDownloads:null,numberOfWosCitations:0,numberOfCrossrefCitations:null,numberOfDimensionsCitations:null,numberOfTotalCitations:null,isAvailableForWebshopOrdering:!0,dateEndFirstStepPublish:"May 12th 2022",dateEndSecondStepPublish:"July 13th 2022",dateEndThirdStepPublish:"September 11th 2022",dateEndFourthStepPublish:"November 30th 2022",dateEndFifthStepPublish:"January 29th 2023",dateConfirmationOfParticipation:null,remainingDaysToSecondStep:"9 days",secondStepPassed:!1,areRegistrationsClosed:!1,currentStepOfPublishingProcess:2,editedByType:null,kuFlag:!1,biosketch:"Dr. William Wilson Anku is a Research Scientist at CSIR- Water Research Institute, Accra-Ghana. He has co-authored 37 papers in renowned peer-reviewed scientific publications with over 590 citations resulting in an H-index of 12.",coeditorOneBiosketch:null,coeditorTwoBiosketch:null,coeditorThreeBiosketch:null,coeditorFourBiosketch:null,coeditorFiveBiosketch:null,editors:[{id:"196465",title:"Dr.",name:"William Wilson",middleName:null,surname:"Anku",slug:"william-wilson-anku",fullName:"William Wilson Anku",profilePictureURL:"https://mts.intechopen.com/storage/users/196465/images/system/196465.jpg",biography:'Curriculum Vitae\n of \nDr William Wilson Anku\n________________________________________\nCSIR- Water Research Institute,\nP. O. Box AH 38, \nAchimota-Accra, Ghana\n\nPrimary Email Address: williamanku85@gmail.com \nAlternate Email Address: williamanku@csir.org.gh \nMobile Numbers: +233547507987/+233577035326 \nGoogle Scholar: https://scholar.google.com/citations?user=tK_Q8UQAAAAJ&hl=en\nORCID: https://orcid.org/0000-0002-5551-6130\nResearchGate: https://www.researchgate.net/profile/William_Wilson_Anku/research\n\nPersonal Information:\nSurname: Anku\nFirst Names: William Wilson\nGender: Male\nCitizenship: Ghanaian\nDate of birth: 20/12/1976\n\nResearch Interests:\n1. Design of nanoparticles with unique structural and physical properties, and the assessment of their structure-property relationships. \n2. Development and evaluation of photocatalytic, ion exchange, adsorption/filtration properties of metal oxide semiconductors and agro-industrial wastes-based nanomaterials for their practical application in water/wastewater treatment \n3. Water/wastewater treatment\t\n\nEducation:\n2015 – 2018: PhD Chemistry, University of Johannesburg, South Africa.\n2005 – 2008: MSc Environmental Science, Kwame Nkrumah University of Science &\n Technology, Ghana.\n1999 – 2003: BSc Chemistry, Kwame Nkrumah University of Science & Technology, Ghana\n1995 – 1997: Secondary School Certificate, Saint Augustine’s College, Cape Coast, Ghana. \n\nEmployment History:\n1.\tResearch Scientist (March 2019-present): CSIR-Water Research Institute, \nAccra-Ghana.\n2.\tPostdoctoral Research Fellow (February 2018 – January 2019): Department of Applied Chemistry, University of Johannesburg, South Africa \n3.\tTeaching Assistant/Tutor (June 2015 – November 2016): Department of Applied Chemistry, University of Johannesburg, South Africa \n4.\tChemistry Tutor (January 2007-September 2014): Effiduase Senior High School, Effiduase-Ashanti (Ghana Education Service).\n\nSupervision of junior researchers at the graduate and postgraduate level:\n1.\tPhD thesis supervision:\n(a) Student Name: Michael Kumi\nInstitution: Department of Applied Chemistry, University of Johannesburg (UJ), South Africa.\nThesis title: Integrated bone and biochar bed for contaminant removal from groundwater. (In progress).\n\n(b) Student Name: George Atongo Atia\n Institution: Department of chemistry, KNUST, Kumasi\n Thesis title: Fabrication of CNTs-metal oxide/polymer chemical sensors for gas sensor\n application and computational studies. (In progress).\n\n2.\tMSc Thesis supervision:\n(a) Student Name: Esther Acheampong \nInstitution: Department of Chemical Engineering, KNUST, Kumasi\n Thesis title: Synthesis of polysulphide intercalated layered double hydroxides for\n adsorption processes. (Completed).\n\n(b)\tStudent Name: Sechaba Menyadi\nInstitution: Department of Applied Chemistry, UJ, South Africa.\nThesis title: Improving the thermoelectric performance of zinc oxide with Al3+, In3+ \nand 2D materials through the formation of superlattice structures. (Completed).\n\n(c)\tStudent Name: Nokuthula Ndaba\nInstitution: Department of Applied Chemistry, UJ, South Africa.\n Thesis title: Isolation and characterization of Drimia delagoensis phytochemicals and\n their application in diabetic foot ulcer treatment. (Completed).\n\nExternal examination of PhD/MSc theses and proposal reviews:\n1.\tExternal examination of a PhD thesis from the Chemical Engineering Department of Vaal University of Technology, South Africa, 2021.\n2.\tExternal examination of PhD thesis from the Physics and Chemistry Departments of Kwame Nkrumah University of Science and Technology, KNUST-Ghana, 2020.\n3.\tReviewer for the 2021-2022 Graduate Women in Science (GWIS) National Fellowship Program of the USA.\n\nScientific Reviewing Activities:\nServing as a reviewer for the following journals:\nACS Applied Materials and Interfaces, ACS Applied Nanomaterials, ACS Industrial and Engineering Chemistry Research, Journal of Dispersion Science and Technology, Journal of Taiwan Institute of Chemical Engineers, Electroanalysis, Journal of Molecular Catalysis A, Inorganic and Nano-Metal Chemistry, Materials Science in Semiconductor Processing, Recent Innovations in Chemical Engineering, Journal of Inorganic and Organometallic Polymers and Materials, International Journal of Biological Macromolecules, Fibers and Polymers, Catalysis letters, Desalination and water treatment, Inorganic and Nano-Metal Chemistry.\n\nProfessional Associations:\n•\tResearch Scientist Association of Ghana\n•\tSouth African Chemical Institute (SACI)\n\nLeadership and volunteering activities:\n•\tVice President of Water Research Institute Branch of Research Staff Association (RSA) of the Council for Scientific and Industrial Research (CSIR), Ghana (2021-2022).\n•\tEditorial board member of RSA-CSIR, Southern Zone (2021/2022).\n•\tEnvironmental Science Department Representative of Graduate Students Association of Ghana: Kwame Nkrumah University of Science and Technology (KNUST) branch (2005-2006).\n•\tVice President of Volta Region Students Association: KNUST branch (2002-2003).\n•\tNational Public Relations Officer of Ghana Students Chemical Society: KNUST branch (2002-2003).\n•\tGeneral Secretary of Volta Region Students Association: KNUST branch (2001-2002).\n•\tVolunteer Teacher at Asukawkaw Senior High School in the Volta Region of Ghana (May-August 2002)\n\nPrizes, awards, fellowships:\n•\tPostdoctoral research fellowship: Faculty of Science, University of Johannesburg, 2018.\n•\tPhD studentship: Faculty of Science, University of Johannesburg, 2015-2018.\n•\tStudents travel fund award: National Research Foundation (NRF) of South Africa, 2016.\n•\tBest poster presenter at the 5th UJ Cross Faculty Symposium held at UJ-Bunting Road Campus, South Africa on 13th October 2015.\n•\tSecond best poster presenter at the 3rd conference on “Emerging Frontiers for Sustainable Water” held at the Protea Hotel Wanderers, in Johannesburg, South Africa from 3-5 August 2015. \n\nPublication Record:\nA.\tBook Chapters\n1.\tOtun, Kabir Opeyemi, Idris Olayiwola Azeez, Onoyivwe Monday Ama, William Wilson Anku, Uyiosa Osagie Aigbe, Kingsley Eghonghon Ukhurebor, and Robert Birundu Onyancha. "Sensing the Presence of Inorganic Ions in Water: The Use of Electrochemical Sensors." In Modified Nanomaterials for Environmental Applications, pp. 65-89. Springer, Cham, 2022.\n2.\tAnku, William Wilson, Onoyivwe Monday Ama, Ikenna Chibuzor Emeji, Uyiosa Osagie Aigbe, Adelaja Otolorin Osibote, Peter Ogbemudia Osifo, and Suprakas Sinha Ray. “Functionalized nanomagnetic materials for environmental applications”. In Functionalized Nanomaterials Based Devices for Environmental Applications, pp. 127-145. Elsevier, 2021.\n3.\tKhoele, Khotso, Onoyivwe Monday Ama, Ikenna Chibuzor Emeji, William Wilson Anku, Suprakas Sinha Ray, David Jacobus Delport, and Peter Ogbemudia Osifo. “Dynamic Degradation Efficiency of Major Organic Pollutants from Wastewater”. Springer, Cham, In book: Nanostructured Metal-Oxide Electrode Materials for Water Purification, pp. 1-18, 2020.\n4.\tAnku, William Wilson, Onoyivwe Monday Ama, Suprakas Sinha Ray, and Peter Ogbemudia Osifo. “Application of Modified Metal Oxide Electrodes in Photoelectrochemical Removal of Organic Pollutants from Wastewater”. Springer, Cham. In book: Nanostructured Metal-Oxide Electrode Materials for Water Purification, pp. 151-166, 2020.\n5.\tWilliam W Anku, Ephraim M Kiarii, Sudheesh K Shukla, and Penny P Govender. “Photocatalytic degradation of pharmaceuticals using graphene based materials”. Springer, Cham. In book: A New Generation Material Graphene: Applications in Water Technology. pp 187-208, 2018.\n6.\tWilliam W Anku, Samuel OB Oppong and Penny P Govender. “Bismuth-based nanoparticles as photocatalytic materials”. InTechOpen. In book: Bismuth: Advanced Applications and Defects Characterization. pp 25-44, 2018.\n7.\tWilliam W Anku, Messai A Mamo and Penny P Govender. “Phenolic compounds in water: sources, reactivity, toxicity and treatment methods”. InTechOpen. In book: Phenolic Compounds-Natural Sources, Importance and Applications. pp. 420-443, 2017. \n\nB.\tPeer-Reviewed Journal Publications \n\n1. Ahiahonu, Elvis K., William W. Anku, Ashira Roopnarain, Ezekiel Green, Penny P. Govender, and Mahloro H. Serepa‐Dlamini. Bioresource potential of Tetradesmus obliquus UJEA_AD: critical evaluation of biosequestration rate, biochemical and fatty acid composition in BG11 media. Journal of Chemical Technology & Biotechnology (2021).\n2. Ahiahonu, Elvis Kodzo, William Wilson Anku, Ashira Roopnarain, Ezekiel Green, Penny Poomani Govender, and Mahloro Hope Serepa-Dlamini. Bioprospecting wild South African microalgae as a potential third-generation biofuel feedstock, biological carbon-capture agent and for nutraceutical applications. Biomass Conversion and Biorefinery (2021): 1-16.\n3. Obiri, Samuel, Gloria Addico, Saada Mohammed, Wilson William Anku, Humphry Darko, and Okrah Collins. Water quality assessment of the Tano Basin in Ghana: a multivariate statistical approach. Applied Water Science 11 (2021): 1-8.\n4. Oppong, Samuel Osei-Bonsu, Francis Opoku, William Wilson Anku, and Penny P. Govender. Insights into the complementary behaviour of Gd doping in GO/Gd/ZnO composites as an efficient candidate towards photocatalytic degradation of indigo carmine dye. Journal of Materials Science 56 (2021): 8511-8527.\n5. Ama Onoyivwe Monday, Khotso Khoele, William Wilson Anku, Suprakas Sinha Ray, Peter Ogbemudia Osifo, and David Jacobus Delport. Synthesis and Application of MnO2/Exfoliated Graphite Electrodes for Enhanced Photoelectrochemical Degradation of Methylene Blue and Congo Red Dyes in Water. Electrocatalysis.11 (2020): 413-421.\n6. Anku, William Wilson, Eric Selorm Agorku, Samuel Osei-Bonsu Oppong, and Anthony Yaw Karikari. "MWCNTs attached neodymium doped-ZnO photocatalysts for efficient removal of dyes from wastewater. SN Applied Sciences. 5 (2020): 1-13.\n7. Karikari Anthony Yaw, Asmah Ruby, Anku, William Wilson, Amisah Steve, Agbo Nelson Wheatson, Telfer C Trevor, Ross, Glenn Lindsay. Heavy Metal Concentrations and Sediment Quality of a Cage Farm on Lake Volta, Ghana. Aquaculture Research. 5 (2020): 2041-2051.\n8. Manyedi, Sechaba, William W. Anku, Ephraim M. Kiarii, and Penny P. Govender. Thermoelectric, Electronic, and Optical Response of Nanostructured Al‐doped ZnO@ 2D‐TiC Composite. ChemistrySelect 5 (2020): 13144-13154.\n9. Renu Kumari, Adeniyi Olugbenga Osikoya Adeniyi Olugbenga Osikoya, Francis Opoku, William Wilson Anku, Sudheesh Kumar Shukla, and Penny Poomani Govender. Composite 2D Nanointerfaces for Electrochemical Biosensing: An Experimental and Theoretical Study. ACS Applied Biomaterials. 12 (2020): 8676-8687.\n10. Onoyivwe Monday Ama, William Wilson Anku, Suprakas Sinha Ray. Photoelectrochemical degradation of methylene blue dye under visible light irradiation using EG/Ag-ZrO2 nanocomposite electrodes. International Journal of Electrochemical Science. 14 (2019) 9982-10001. \n11. Onoyivwe Monday Ama, Khotso Khoele, William Wilson Anku, Suprakas Sinha Ray. Photoelectrochemical Degradation of 4-Nitrophenol using CuOZnO/exfoliated graphite Nanocomposite Electrode. International Journal of Electrochemical Science. 14 (2019) 2893 – 2905.\n12. Ndaba, Nokuthula, Marthe Carine Fotsing, William Wilson Anku, and Penny Poomani Govender. In vitro and in silico studies of the antifungal properties of the bulb and leaves extracts of Drimia delagoensis Baker (Jessop). Advances in Traditional Medicine, (2019): 1-7.\n13. Samuel Osei-Bonsu Oppong, Francis Opoku, William Wilson Anku, Ephraim\nMuriithi Kiarii, Penny Poomani Govender. Experimental and Computational Design of Highly Active Ce–ZrO2–GO Photocatalyst for Eosin Yellow Dye Degradation: The Role of Interface and Ce3+ Ion. Catalysis Letters. (2019) 1-18.\n14. Renu Kumari, Adeniyi Olugbenga Osikoya, Francis Opoku, William Wilson Anku, Sudheesh Kumar Shukla, Penny Govender. Hierarchically assembled Two-dimensional Gold-Boron Nitride-Tungsten Disulphide nanohybrid interface system for electrobiocatalytic applications. Materials chemistry and physics, 226 (2019) 129-140.\n15. Madima Ntakadzeni, William Wilson Anku, Penny Poomani Govender, Leelakrishna Reddy. Mo3S4 nanorod: An effective photocatalyst for the degradation of organic dyes in aqueous solution. Recent innovations in chemical engineering, 12 (2019) 61-9.\n16. Madima Ntakadzeni, William Wilson Anku, Neeraj Kumar, Penny Poomani Govender, Leelakrishna Reddy. Pegylated MoS2 nanosheets: A dual functional photocatalyst for photodegradation of organic dyes and photoreduction of chromium from aqueous solution. Bulletin of Chemical Reaction Engineering & Catalysis, 14 (2019) 142-152.\n17. S. O.B. Oppong, W. W. Anku, F. Opoku, S. K. Shukla, E. S. Agorku and P. P. Govender. Photodegradation of Eosin Yellow Dye in Water under Simulated Solar Light Irradiation using La-Doped-ZnO Nanostructure Decorated on Graphene Oxide as an Advanced Photocatalyst. ChemistrySelect 3 (2018) 1180-1188.\n18. W. W. Anku, S. K. Shukla and P. P. Govender. Graft gum ghatti caped Cu2O nanocomposite for photocatalytic degradation of naphthol blue black dye. Journal of Inorganic and Organometallic polymers and Materials (2018) 1540-1551.\n19. C.N. Peter, W. W. Anku, R. Sharma, G. M. Joshi, S. K. Shukla, P. P. Govender. N-doped ZnO/graphene oxide: a photo-stable photocatalyst for improved mineralization and photodegradation of organics dye under visible light. IONICS (2018) 327-339.\n20. C.N. Peter, W. W. Anku, S. K. Shukla, P. P. Govender. Theoretical studies of the Interfacial charge transfer and the effect of vdW correction on the interaction energy of non-metal doped ZnO and graphene oxide interface. Theoretical Chemistry Accounts 137 (2018) 75-84.\n21. Renu Kumari, Adeniyi Olugbenga Osikoya, William Wilson Anku, Sudheesh Kumar Shukla, Penny Poomani Govender. Hierarchically assembled two-dimensional hybrid nanointerfaces: A platform for bioelectronic applications. Electroanalysis. Electroanalysis 30 (2018) 2339-2348.\n22. W. W. Anku, S. O. B. Oppong, S. K. Shukla, E. S. Agorku, and P. P. Govender. Cobalt doped ZrO2 decorated multiwalled carbon nanotube: A promising nanocatalyst for photodegradation of indigo carmine and eosin Y dyes. Progress in Natural Science: Materials International 26 (2017) 354-361.\n23. S. O. Oppong, W. W. Anku, S. K. Shukla and P. P. Govender. Synthesis and characterisation of neodymium doped-zinc oxide–graphene oxide nanocomposite as a highly efficient photocatalyst for enhanced degradation of indigo carmine in water under simulated solar light. Research on Chemical Intermediates 43 (2017) 481-501.\n24. W W Anku, S. O. B. Oppong, S K Shukla and P P Govender.Comparative photocatalytic degradation of monoazo and diazo dyes under simulated visible light using Fe3+/C/S doped-TiO2 nanoparticles. Acta Chimica Slovenica 63 (2016) 380-391.\n25. W. W. Anku, S. O. B. Oppong, S. K. Shukla, E. S. Agorku, and P. P. Govender. Chitosan–sodium alginate encapsulated Co-doped ZrO2–MWCNTs nanocomposites for photocatalytic decolorization of organic dyes. Research on Chemical Intermediates 42 (2016) 7231–7245.\n26. W. W. Anku, S. O. B. Oppong, S. K. Shukla, E. S. Agorku, and P. P. Govender. Palladium-doped–ZrO2–multiwalled carbon nanotubes nanocomposite: an advanced photocatalyst for water treatment. Applied Physics A 122 (2016) 579-587.\n27. W W Anku, S. O. B Oppong, S K Shukla and P P Govender. Influence of ZnO concentration on the optical and photocatalytic properties of Ni-doped ZnS/ZnO nanocomposite. Bulletin of Materials Science 39 (2016) 1745-1752.\n28. S. O. B. Oppong, W. W. Anku, S. K. Shukla, E. S. Agorku and P. P. Govender. Photocatalytic degradation of indigo carmine using Nd-doped TiO2-decorated graphene oxide nanocomposites. Journal of Sol-Gel Science and Technology 80 (2016) 38–49.\n29. M. Mzoughi, W. W. Anku, S. O. Oppong, S. K. Shukla, E. S. Agorku and P. P. Govender. Neodymium Doped ZrO2-graphene Oxide Nanocomposites: A Promising Photocatalyst for Photodegradation of Eosin Y Dye. Advanced Materials Letters 7 (2016) 946-950.\n30. S. O.B. Oppong, W. W. Anku, K. S. Shukla and P. P. Govender. Lanthanum doped-TiO2 decorated on graphene oxide nanocomposite: A photocatalyst for enhanced degradation of Acid Blue 40 under simulated solar light. Advance Materials Letters 8 (2016) 432-438.\n\nConference Presentations\n1.\tSession Co-chairs: William Wilson Anku and Saada Mohammed. Session Title: Innovative sample preparation and detection techniques for legacy and emerging pollutants in different environmental matrices. Virtual SETAC Africa 10th Biennial Conference held from 20-22 September 2021.\n\n2.\tW.W. Anku, S.O.B. Oppong, S. K. Shukla, E.S Agorku and P.P. Govender. Hetero-elements doped TiO2 for comparative photocatalytic degradation of monoazo and diazo dyes. SPEA9- 9th European Meeting on Solar Chemistry and Photocatalysis: Environmental Applications. Held in Strasbourg, France from 13th to 17th June 2016. \n\n3.\tW.W. Anku, S.O.B. Oppong, S. K. Shukla, E.S Agorku and P.P. Govender. Cobalt-doped ZrO2 decorated multiwalled carbon nanotube: A promising nanocatalyst for photodegradation of indigo carmine dye. 4th YWP-ZA Biennial Conference and 1st Africawide YWP Conference. Held at the CSIR-Pretoria, South Africa from 16th to 18th November 2015. (Won second best presenter award).\n\n4.\tW.W. Anku, S.O.B. Oppong, S. K. Shukla, E.S Agorku and P.P. Govender. Palladium doped-ZrO2-multiwalled carbon nanotubes nanocomposite as an advanced photocatalyst for water treatment. 5th UJ Cross Faculty Symposium. Held at UJ-Bunting Road Campus on 13th October 2015. (Won best presenter award).\n\n5.\tW.W. Anku, S.O.B. Oppong, S. K. Shukla, E.S Agorku and P.P. Govender. Cobalt-doped ZrO2 decorated multiwalled carbon nanotube: A promising nanocatalyst for photodegradation of indigo carmine dye. UJ Harvest festival. Held on 17 September 2015 in Perskor Building, DFC.\n\n6.\tW.W. Anku, S.O.B. Oppong, S. K. Shukla, E.S Agorku and P.P. Govender. Palladium doped-ZrO2-multiwalled carbon nanotubes nanocomposite as an advanced photocatalyst for water treatment. 3rd conference on Emerging Frontiers for Sustainable Water. Held at the Protea Hotel Wanderers, in Johannesburg, South Africa from 3-5 August 2015.\n\nReferences\n1. Prof Penny Govender\nDirector: Research Capacity Development (RCD)\nPostgraduate School: Research & Innovation, 101, Akanya Building\nAPK campus, University of Johannesburg, South Africa\nTel: 27845002689. Email: pennyg@uj.ac.za\n\n2. Dr. Anthony Yaw Karikari\nDeputy Director: \nCSIR-Water Research Institute, P.O. Box M38, Achimota-Accra, Ghana\nTel: 233208184215, E-mail: aykarikari@hotmail.com\n\n3. Dr Monday Onoyivwe Ama\nResearch Scientist: CSIR-National Centre for Nanostructured Materials,\nMeiring Naude Road Brummeria, Block 19B, Pretoria 0001, South Africa \nTel.: +27733300486, Email: onoyivwe4real@gmail.com',institutionString:"CSIR-Water Research Institute",position:null,outsideEditionCount:0,totalCites:0,totalAuthoredChapters:"2",totalChapterViews:"0",totalEditedBooks:"0",institution:null}],coeditorOne:null,coeditorTwo:null,coeditorThree:null,coeditorFour:null,coeditorFive:null,topics:[{id:"14",title:"Materials Science",slug:"materials-science"}],chapters:null,productType:{id:"1",title:"Edited Volume",chapterContentType:"chapter",authoredCaption:"Edited by"},personalPublishingAssistant:{id:"440212",firstName:"Elena",lastName:"Vracaric",middleName:null,title:"Ms.",imageUrl:"https://mts.intechopen.com/storage/users/440212/images/20007_n.jpg",email:"elena@intechopen.com",biography:"As an Author Service Manager, my responsibilities include monitoring and facilitating all publishing activities for authors and editors. From chapter submission and review to approval and revision, copyediting and design, until final publication, I work closely with authors and editors to ensure a simple and easy publishing process. I maintain constant and effective communication with authors, editors and reviewers, which allows for a level of personal support that enables contributors to fully commit and concentrate on the chapters they are writing, editing, or reviewing. I assist authors in the preparation of their full chapter submissions and track important deadlines and ensure they are met. I help to coordinate internal processes such as linguistic review, and monitor the technical aspects of the process. As an ASM I am also involved in the acquisition of editors. 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They are mainly used to refine the grain microstructure or facilitate precipitation hardening. Micro-alloyed steel developed in the second half of twentieth century. A lot of advancements have taken place due to the development of micro-alloyed steels. Certainly, it improves the hardening, tensile strength, and other mechanical properties of steels. Micro-alloyed substituents like niobium, vanadium, titanium, etc. cause significant grain refinement by retarding recrystallization and forms precipitation of carbon-nitride by these micronutrients. Precipitation of Nb(C,N) that forms improve the microstructure and overall properties of final product. This precipitation further inhibits the recrystallization of austenite, as a result of which reduction of ferritic grains takes place after transformation of noncrystalline austenite. On the basis of this principle later, high-strength low-alloy (HSLA) was developed.
\nFCC has 8 and 4 octahedral and tetrahedral voids per unit cell, respectively, whereas BCC has 12 and 6, respectively. The octahedral void in FCC is bigger than the tetrahedral. Carbon occupies the octahedral void with less distortion. The octahedral void in BCC is smaller than the tetrahedral even in the case when carbon occupies octahedral void due to lesser distortion (only top atom and bottom need to be distorted) [2]. The number of voids in BCC is greater than that in FCC, whereas size of voids in BCC is significantly smaller than that in FCC. For this reason austenite have higher solubility of C than ferrite. But all the alloying elements have some sort of solubility in ferrite. It mainly depends on the amount of carbon present in the structure. Nickel, aluminum, silicon, copper, cobalt, etc. dissolve in ferrite in a large extent and play a significant role in increasing hardness and strength by solid solution hardening. Group 2 elements in Table 1 dissolve in ferrite in the absence of carbon, otherwise it forms carbide.
\nAlloying element | \nGroup 1 Dissolved in ferrite | \nGroup 2 Combined in carbide | \n
---|---|---|
Nickel | \nNi | \n\n |
Silicon | \nSi | \n\n |
Aluminum | \nAl | \n\n |
Copper | \nCu | \n\n |
Manganese | \nMn | \nMn | \n
Chromium | \nCr | \nCr | \n
Tungsten | \nW | \nW | \n
Molybdenum | \nMo | \nMo | \n
Vanadium | \nV | \nV | \n
Titanium | \nTi | \n\n |
In Figure 1, the probable hardening effect of various elements dissolved in alpha (α) iron is shown. When silicon dissolved in alpha (α) iron, then the hardening value lies in maximum among the addition of Mn, Ni, Mo, V, W, and Cr. Among the alloyed elements, the addition of chromium causes the least hardening effect.
\nProbable hardening effect of the various elements as dissolved in alpha iron (reprinted from Ref. [
The dissolved element has a little hardening effect in the contribution of ferrite to the overall strength of the steel. In the case of the low-carbon chromium steels, when the structural change occurs by any process, then hardening of such steels occur. The change of structure can be done in the case of annealed steels by cooling it from higher temperature by air. In Figure 2 it is clearly understood. In Figure 2 when the low-carbon chromium-annealed steels are air-cooled, then its tensile strength rises to a high value. On the other hand, when cooled in furnace, a little change in tensile property is seen.
\nThe minor effect of chromium in annealed steels compared with the powerful effect as a strengthener through its influence on structure in air-cooled steels. Probable hardening effect of the various elements as dissolved in alpha iron (reprinted from Ref. [
The presence of alloying elements plays an important role in the change of critical range, position of eutectoid point, and location of the alpha and gamma fields indicated by the binary iron-iron carbon diagram. Besides, the presence of nickel and manganese lowers the critical temperature on heating, which stabilizes austenite. If the critical temperature lowers than that of the standard region, then austenite becomes stable at room temperature. Thus nickel and molybdenum stabilize austenite at room temperature, and the addition of such alloying element is used in the preparation of austenitic stainless steel.
\nOn the other hand, Mo, Cr, Si, and Ti raise the critical temperature range which contracts the austenite zone and enlarges the alpha and gamma regions as well.
\nAustenitic stainless steel plays a great role in industrial applications by giving corrosion resistance of steels and providing well mechanical strength. It is mainly used in pressure vessels, reactors, storage tanks which are used underground, and especially in aqueous environments containing chlorides. Austenitic stainless steels are used in manufacturing pump in the oil industry that injects saltwater to expel gas and oil. For the preparation of austenitic stainless steels, Ni and Mo play an important role.
\nFrom Figure 3, it is clearly shown that the addition of Ti, Mo, Si, W, and Cr raises the eutectoid temperature of steels. The rise of the eutectoid temperature of steels lowers the stability region of austenite, which ultimately stabilizes austenite at the elevated temperature. At this scenario, austenite becomes unstable at lower or room temperature. Besides, the addition of Mn and Ni lowers the eutectoid temperature which passively indicates that the stability of austenite at room temperature. As a result, Mn and Ni are the helpful alloying elements in the case of the austenitic stainless steels.
\nEutectoid composition and eutectoid temperature as influenced by several alloying elements. Probable hardening effect of the various elements as dissolved in alpha iron (reprinted from Ref. [
Range of austenite in chromium steels (reprinted from Ref. [
Annealed steel without niobium (BSE after Behara etching) with (a) Austenite grains in ferrite matrix and (b) beginning of the sigma phase (adapted from Ref. [
Steels modified with 0.2% niobium (adapted from Ref. [
Chromium in particular lowers the eutectoid temperature. Thus with the addition of chromium, the austenite zone contracts as austenite is stable above the critical temperature. If the critical temperature rises up, then austenite gets stable at elevated temperature and unstable at room temperature. Thus with the addition of chromium the austenite zone contracts more and prone to the formation of austenitic stainless steel reduces. And austenitic stainless steels become unstable at room temperature.
\nIn the case of the tempering of the plain carbon steels, when the temperature is increased, then the hardness value is decreased; thus hardened steels are softened. At the same time, the hardness drops continuously. Some alloying elements play an important role in retarding the softening effect of the hardened steel at elevated temperature. When tempering is done at elevated temperature, then the steel may soften. Usually the elements that remain dissolved in ferrite, such as Ni, Si, and Mn, have very little effect in the retardation of the softening of steels at elevated temperature.
\nThe complex carbide-forming elements such as Cr, W, Mo, and V retard the softening at elevated temperature while tempering. Besides, they do not only retard the softening effect but also improve the hardness of the plain carbon steels to some aspects.
\nNiobium is a soft gray ductile and transition element. The main commercial source of niobium is mineral pyrochlore. Around 80% of the niobium produced is used in automotive industry, for oil and gas pipelines, and in construction. Adding niobium to steels causes the formation of niobium carbide and niobium nitride which improve grain refinement and retardation of recrystallization. Besides, it enhances precipitation hardening which increases toughness, strength, formability, and weldability of micro-alloyed steel [4].
\nLarge-diameter pipes are used in transportation of oil and gas. It is manufactured by thermomechanical controlled processing (TMCP) [5]. Its performance can be enhanced by inducing its strength and toughness through grain refinements. Grain refinement can be done by controlling austenite parameters by the addition of niobium.
\nIn austenitic-ferritic stainless steel, usually solidification starts at 1450°C with the formation of ferrite (α) which acts as an origin to start the formation of austenite near 1300°C. σ forms at the interphase of austenite and ferrite at 600–950°C, and the toughness of the steel gets reduced.
\n\nFigures 1–6 show the microstructural characteristics of the austenitic-ferritic stainless steel with or without niobium, after heat treatment.
\n\nFigure 5(a) shows the heat-treated steels without niobium with elongated austenitic grains in ferrite matrix. When the annealed sample is aged at 850°C/15 min then it is observed that the beginning of sigma phase forms.
\nWhen steel is modified with 0.2% niobium, then a little amount of sigma phase is observed than steel without niobium after being annealed and aged at 850°C/15 min. Besides no Laves phase is seen (Figure 7).
\nSteel modified with 0.5% niobium (adapted from Ref. [
When steel is modified with 0.5% niobium after being annealed and aged at 850°C/min, then the Laves phase appears as needles associated with sigma phase.
\nIn the aggressive environments, the preferential attack prone to the reduction of Cr and Mo near and alongside of the sigma phases. That is the reason for the reduction on pitting corrosion resistance in the steels.
\nThe addition of niobium in supermartensitic stainless steel after tempering at 600°C for 2 h improves the mechanical resistance properties with lower degree of sensitization. Besides, given such properties, it never compromises its elongation and pitting corrosion resistance compared to the reference steels.
\nTitanium alloys are mainly used in the structural materials in the aerospace and chemical industries due to lower density, high strength, and corrosion resistance. Tensile strength/density ratios of titanium alloys are considerably greater than that of steels and Al alloys at ordinary temperature. For these reasons Ti alloys are mostly used in the aerospace industries. And for this Ti is added to the steels to improve its properties to some extent (Figure 8).
\nComparison of (a) short-time tensile strength and (b) tensile strength/density ratio for titanium alloys, three classes of steel, and 2024-T86 aluminum alloys included for annealed alloys with less than 10% elongation or heat-treated alloys with less than 5% elongation (reprinted from Ref. [
When Ti is added to the steels, then it improves its high temperature properties as refractory metals [9]. The chemical behavior of Ti always limits its application at moderate to high temperature. At low temperature Ti passives to acids and minerals, but at elevated temperature, Ti oxidizes very fast. Besides, dissolution of hydrogen and nitrogen causes surface hardening.
\nPure Ti undergoes allotropic transformations at about 1158 K. Thus if Ti remains in steels at around 1158 K, the properties may vary, because pure Ti at 1158 K transforms from a closely packed hexagonal structure to a body-centered cubic structure. The high temperature BCC of Ti is called alpha phase. On the other hand, HCP at low temperature forms beta phase. Beta to alpha transformation happens by diffusionless martensitic transformation.
\nAllotropic transformation temperature depends on few alloying elements. Some alloying elements raise the transformation temperature called alpha stabilizers, whereas few lower the transformation temperatures called beta stabilizers.
\n\nFigure 9 shows that carbon, oxygen, and nitrogen are rapidly absorbed by Ti when the metal is hot. All these elements hardened and the solution hardened the alpha Ti. Al has significant solubility over alpha and beta phases. The reason to explain it is that Ti has many fold advantages on the steel acting as an alloying element.
\nPhase transformation of titanium with the weight percentage of (a) Cr and (b) Ni stabilizers (reprinted from Ref. [
Elements that lower the transformation temperature are of two classes. One is elements that undergo eutectoid transformations, for example, iron, Cu, N, Co, Mn, etc. And the other one is those that are isomorphous with beta phase at high temperature and from alpha + beta equilibrium phase at ordinary temperature.
\n\nFigure 10 expresses that Mo, Ta, V, etc. have limited solubility in alpha phases.
\nPhase diagrams of titanium with selected stabilizers (reprinted from Ref. [
The main role of Ti in steel is grain refinement strengthening and precipitation strengthening. The smelting of Ti-micro-alloyed steel should satisfy that most of the Ti dissolves in the molten steel and precipitates in the form of carbide or carbonitride after the subsequent solidification.
\nThe affinity of Ti toward oxygen is less than that of the aluminum toward the oxygen. Besides, Ti has greater affinity than manganese toward oxygen. Thus if the molten steel during smelting is not deoxidized properly, then there is a large amount of titanium oxide.
\nThe high content of nitrogen forms titanium nitride that forms inclusions in molten steels. On the other hand, titanium oxides and nitrides will obstruct the process of continuous casting. During the refining process by pyrometallurgy of Ti-micro-alloyed steel, it is required to remove sulfur, oxygen, and nitrogen. But emphasis should be given on the relationship between Ti, Al, and Ti, which are refractory elements. Compared with Nb or V, in the case of Ti, it is more difficult to control Ti-micro-alloyed steels which attributes to the more type of the secondary phase and wider temperature range of the precipitate.
\nDuring smelting Ti2O3 and TiN particles will precipitate in the liquid steel that improves as cast microstructure. During slab cooling process TiN and Ti4S2C2 tens to hundreds of nanometers precipitate in the solid solution plays an important role in controlling the grain growth of austenite during soaking and recrystallization process (Figure 11).
\nTi-bearing precipitation (adapted from Ref. [
During rolling TiC precipitation of TiC with the size below 10mm could result in the significantly precipitation hardening.
\nAs a kind of micro-alloying element, Ti significantly improves the comprehensive properties of steel. However, when compared with niobium and vanadium micro-alloyed technology, Ti has not been used extensively in industry for a long time. Ti-micro-alloyed steel fluctuates largely and production process is not stable. Ti is very reactive and forms TiO and TiS that are very harmful. Formation of these phases consumes a portion of Ti that reduces the volume fraction of TiC precipitation at low temperature but also significantly changes the chemical free energy of TiC. Precipitation behavior of TiC changes and strengthening effect is greatly affected. Besides, TiC is sensitive to temperature and affects the properties of steel.
\nBesides, high-strength Ti-micro-alloyed steels are the precipitation-hardened ferritic steels. The ferrite grain refinement and TiC precipitation have a good combination in strengthening that plays an important role in obtaining both high strength and high toughness simultaneously for those steels. The ferrite grain refinement depends on the refinement of austenite grain size and on the control of transformation temperature. The refinement of austenite grain size mainly depends on the control of the austenite grain growth before hot rolling and recrystallized austenite grains during hot rolling.
\nNickel is the oldest and one of the fundamental alloying elements. It has unlimited solubility in gamma iron and is highly soluble in ferrite. As a result it gives high strength and toughness. Ni lowers the critical temperature of steels and retards the decomposition of austenite. As a result at low temperature or room temperature, austenite gets stable.
\nNi does not form carbide. Besides, it reduces the carbon content of the eutectoid. As a result of which there is high percentage of pearlite forms compared to the equal composition plain carbon steels. Pearlite forms at the lower temperature thus become finer and tougher than the pearlite in unalloyed steels.
\nChromium is less expensive than Ni. Chromium is a carbide former and forms (Cr7C3, Cr4C) or complex carbide [(FeCr)3C]. This carbide has high hardness and wear resistance. It has 13% solubility in austenite and unlimited solubility in ferrite. In alloying steels, chromium containing more than 5% improves the corrosion resistance and high temperature properties.
\nManganese is less expensive and mostly acts as deoxidizers. The presence of manganese in alloy steel reduces the prone to the hot shortness. As a result of which, the alloy steel containing manganese can perform the hot work.
\nBesides, the absence of manganese in the steel may form FeS. FeS has low melting temperature. Ehen the steel sample is how rolled then due to the low melting temperature of the FeS it melted first. Thus the few places in steels containing FeS become slippery, and thus the hot-rolled samples may slip during rolling.
\nMn and Ni both reduce the critical temperature and lowers the amount of carbon in eutectoid. Alloying steels containing more than 10% Mn become austenitic after slow cooling.
\nHadfield Mn steel is a special type of steel (12% Mn) and has great abrasion resistance. If it is slow-cooled from 1750F, then a large brittle carbide forms surrounding the austenite grain. Ultimately forms the structure with low strength and ductility.
\nMolybdenum is a little expensive alloying element. It has limited solubility in austenite and ferrite. As a result of which, it is a strong carbide former. Molybdenum is used in combination with Ni or Cr or both. Plain molybdenum steel is carburized to improve wear resistance.
\nA lot of research has been done in the case of interphase precipitation. In matter molybdenum plays significant roles. Four steels were manufactured with identical composition, and Ti, V, Mo, and N content is added to investigate the effect of composition on interphase precipitation. Alloys were rapidly cooled from the single austenite phase field and isothermally transformed at 630°C and 650°C for 90 min. When Mo is added, then there is a significant reduction in the austenite to ferrite transformation kinetics, particularly in the case of V steels. Interphase precipitation was observed in all alloys at both transformation temperatures. In the case of the Ti-bearing steel, two types of precipitate were observed, namely, TiC (finer) and Ti2C (coarser), while for the V-bearing steels, VC (finer) and V4C3 (coarser) were observed. Where Mo was present in the alloy, it was found dissolved in all carbide types. The (Ti,Mo)C and (V,Mo)C were formed by classical planer interphase precipitation (PIP), while the (Ti,Mo)2C and (V,Mo)4C3, which had a much wider row spacing, were formed through curved interphase precipitation (CIP). Each adopted one variant of the Baker-Nutting orientation relationship. The Ti-micro-alloyed steels undergo the smallest precipitates of all the steels, which were approximately the same size irrespective of whether Mo was present in the alloy and irrespective of the transformation temperature. However, the addition of Mo to the V-bearing steels causes significant increase in precipitate volume fraction and a reduction in precipitate size.
\nTungsten is mainly popular for providing high temperature properties and hardenability. It is mainly a carbide former. Approximately 2–3% W is equivalent to 1% Mo. Tungsten is mainly used in the tools industry (Table 2).
\nNb micro-alloyed steels | \nTi micro-alloyed steels | \nNi micro-alloyed steels | \nCr micro-alloyed steels | \nMn micro-alloyed steels | \nMo micro-alloyed steels | \nW micro-alloyed steels | \n
---|---|---|---|---|---|---|
Addition of Nb in steels causes formation of niobium carbide and niobium nitride which improves grain refinement, and retardation of recrystallization ultimately increases toughness, strength, formability, and weldability | \nAddition of Ti in steels passives to acids and minerals at low temperature and improves high temperature properties | \nNi lowers the critical temperature of steels and retards the decomposition of austenite. As a result at low temperature or room temperature, austenite gets stable | \nIn the alloying steels, chromium containing more than 5% improves the corrosion resistance and high temperature properties | \nThe presence of manganese in the alloy steel reduces the prone to the hot shortness | \nMolybdenum is used in combination with Ni or Cr or both. Plain molybdenum steel is carburized to improve wear resistance | \nTungsten is mainly popular for providing high temperature properties and hardenability of steels | \n
Basic comparison of different types of micro-alloyed steels.
For achieving high strength and toughness, fine grain structure is essential in steels. To produce such microstructure, a carefully controlled high temperature processing of steels must be done. Hot working alone cannot refine the coarse or nonuniform grain. For example, grain coarsening behavior of laboratory heats of C-Si-Mn base steels varies with the concentration of Al, V, Ti, or Nb micro-alloy addition. Thus, steels containing the very insoluble TiN coarsen at much higher temperatures than steels containing the more soluble VCN.
\nThe main strengthening mechanisms of micro-alloyed steels are grain refinement and precipitation [12]. It can be done by high temperature-controlled process and by adding proper alloying elements. Nowadays an economical alternative of the traditional quenched and tempered steels is micro-alloyed steels.
\nStrengthening mechanism can be done by precipitation forming and grain refining. Micro-alloy element hinders grain growth that causes grain refinement [13]. Precipitates forming on ferrite or austenite cause improvement of hardening or strengthening of steel. Phase transformation in some cases also causes strengthening of steels. In phase transformation, different micro-alloying elements appear to contribute considerably. Strengthening of steels can be done by different heat treatment techniques as well in addition to alloying. Besides, the most economical alternative way of improving the mechanical properties of steel is adding smaller amounts of some special elements.
\nFungi are eukaryotic organisms thought to have about 4 million species [1]. Although the cell structures of fungi are similar to other eukaryotic cells, they differ from other cells by the presence of ergosterol in their cell membrane and chitin in their cell walls. Cell cytoplasm contains higher concentrations of salt and sugar than other eukaryotes. This regulates cell homeostasis and regulates the exchange of substances. Except for yeasts, most fungi have microscopic structures called hyphae, and these come together to form visible structures called mycelium. The hyphae have apical growth. In the apical growing parts of the hyphae, there are secretory vesicles called “Spitzenkörper” and Wooronin body organs that act as peroxisomes. Because of these properties of hyphae, fungi can live where other eukaryotic cells do not and can use various substrates [2, 3]. Fungi take part in many degradations, transformation, and cycle events in nature. Although they are heterotrophic creatures, they can survive as saprophytic, mutualistic, and parasitic. The fact, that they are found in all parts of the world and live in different environments is due to the superior reproductive abilities of fungi [4, 5, 6].
Fungi can reproduce sexually and asexually. Asexual reproduction of fungi is carried out by vegetative reproduction through hyphae or by the spores they produce. Sexual reproduction is; they form a diploid nucleus with the union of haploid spores, and the cycle continues with the germination of this nucleus. In fungi, asexual reproduction takes place more than sexual reproduction. This event increases the adaptive power of fungi and prevents the accumulation of any harmful mutations that may occur and their transmission from generation to generation. In addition, their chances of survival and competitive advantage are ensured [4, 5, 7].
Sexual reproduction in fungi takes place in three stages. In the first stage; haploid cells fuse, this is called plasmogamy. In the second stage; the fusion of two haploid nuclei, this event is karyogamy. The third stage is; the resulting diploid cells undergo meiosis to form haploid cells, and the cycle continues in this way [8]. These stages are summarized in Figure 1.
Fungal reproduction.
The association or non-union of haploid cells is determined by DNA. The sex of haploid cells is determined by a specific gene region in fungi. This region is known as the mating-type locus and is abbreviated MAT. MATs genetically determine the mating identity of fungi and stimulate the secretion of pheromones. Secreted pheromones provide communication between fungi and realize sexual intercourse [4, 9, 10, 11].
Fungi, like every living thing, need energy and food sources to complete their development and life cycles after sexual and asexual reproduction. These food sources are carbon, nitrogen, vitamins, and minerals. They also need suitable environmental conditions (such as pH, temperature, humidity, oxygen) to grow and develop [12, 13, 14].
Fungi can consume vegetable and animal carbon sources thanks to their hydrolytic enzymes. They can use monosaccharides and polysaccharides such as glucose, fructose, chitin, cellulose, hemicellulose, and lignin [15, 16]. Like all living things, fungi need a nitrogen source for their growth and development, and fungi can metabolize many different nitrogen sources. Especially ammonium and glutamine are the first nitrogen sources they use. In addition, they can easily use other nitrogen sources [17].
Vitamins are cofactors of enzymes and growth factors of many organisms. Fungi need vitamins for their growth and development. Some of these vitamins are; thiamine, biotin, riboflavin, nicotinic acid, vitamin K and pantothenic acid [18].
Like many microorganisms, fungi can survive in varying environmental conditions and under various stress factors. They can survive and reproduce in extreme environments, such as the poles, in extremely cold regions, and in extremely hot regions such as deserts. Fungi are generally; grow better in warm, acidic, and aerobic environments, but they can survive in cold, alkaline, and anaerobic environments. Although the growth temperatures of the fungi are quite wide, the best growth is seen at 25°C. Fungi that live under the temperature at which they develop optimally are called psychrotolerant, and fungi that live at temperatures of 40°C and above are called thermotolerant fungi. Fungi that live in or are exposed to temperatures above 40°C can survive by protecting themselves from heat stress by producing heat shock proteins. Fungi can be found in yeast or mold structures depending on the temperature of the environment they are in, and fungi with this feature are called dimorphic fungi. One of the most important fungi showing this feature is
Fungi are among the largest and most diverse groups of eukaryotic organisms. Because of their complex gene structure, the enzymes they produce, and their ability to use many different carbon sources, they, directly and indirectly, affect human life. They have been used for centuries as a food source and in the production process of many biotechnological products. Today, fungi are used in various fields such as antibiotics, enzyme technology, drug production, pigment production [24, 25, 26]. Although fungi are necessary for the survival of life on earth, they cause serious problems in most organisms. Fungi cause disease in humans, animals, and plants and cause the death of these organisms [27, 28]. Fungi infect many organisms with the secondary metabolites and mycotoxins they produce, even cause their extinction [29].
A fungal kingdom is a group that contains the most and most harmful plant pathogens. By infecting all tissues and organs of plants, they damage many herbaceous and woody plants with high economic value and nutritional properties. In cultivated plants such as corn, wheat, sugar beet, potato, banana; causes great harm to farmers by causing diseases such as root rot, wilt, stem softness, gall and rust. They also develop in stored grains and cause product loss. Also; high woody plants are infected by white rot and brown rot fungi, resulting in tissue deterioration and plant death. Plant pathogen fungi can reproduce both sexually and asexually in host plants [30, 31, 32, 33]. Table 1 shows the plants that some fungi cause disease.
Pathogen fungus | Plant | Damage |
---|---|---|
Picea | Root rot | |
Abies | Root rot | |
Maize | Gall | |
Maize, Sugar beet | Ear rot | |
Wheat, barley | Black rust | |
Flaxseed | Red rust | |
Tomato, pepper, watermelon | Root rot | |
Chickpeas, carrots, olives, apples | Pallidness | |
Ginger | Aflatoxin | |
Crucifers | Blackleg | |
Banana | Mildew | |
Soybean | Root rot | |
Pinus | Red band needle blight | |
Pinus | Brown spot needle blight, | |
Tomato, potato, pepper eggplant | Mildew | |
Plants | Vascular pallor |
Some plant pathogenic fungi and infecting plants.
Fungi cause infections not only in plants but also in humans and animals. Bees, insects, frogs, fish, and corals are some organisms affected by fungal infections. Fungi enter the body from the outer shells, trachea, and skin of these creatures and cause the death of these creatures. Fungal diseases have killed more than 1.6 million people annually. It is thought that pandemics caused by fungi may occur with global warming and climate change [34]. Because the stress tolerance and adaptation abilities of the fungi are very high, they have destroyed their existence on earth by infecting many different organism groups (Table 2). In humans, they cause skin infection, lung infection, and intestinal infection. They also cause diseases in animals and humans by reproducing sexually and asexually [35, 36].
Pathogen fungus | Organisms | Damage |
---|---|---|
Horse | Encephalomalacia | |
Human | Liver cancer | |
Human | Brain tissue loss | |
Human | Infection in the blood | |
Human | Infection in the lung | |
Amphibian | ||
Ant | ||
Bird | Lung infection | |
Fish shellfish | ||
Cat |
Diseases are caused by some pathogenic fungi in humans and animals.
Apart from its use as food; the fungi which we use in the production of drugs, antibiotics, anticarcinogenic substances, pigments, alcohol, and biofuels, are indispensable elements for the continuation of our lives. As we stated in this publication, their high reproductive capacity and ability to survive in extreme conditions provide fungi with a competitive advantage and advantage over other organisms. These abilities give it the capability to live in the plant, animal, and human tissue-organs. If the development and growth demand of fungi, whether pathogenic or not, are known, we can make the most of these organisms and prevent the development of fungi that cause disease. This study will enable us to get to know fungi a little more closely and will enable us to take precautions against these organisms.
The authors do not declare any conflict of interest.
This is a brief overview of the main steps involved in publishing with IntechOpen Compacts, Monographs and Edited Books. Once you submit your proposal you will be appointed a Author Service Manager who will be your single point of contact and lead you through all the described steps below.
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\n\nAfter approval, you will proceed in submitting your full-length manuscript. 50-130 pages for compacts, 130-500 for Monographs & Edited Books.Your full-length manuscript must follow IntechOpen's Author Guidelines and comply with our publishing rules. Once the manuscript is submitted, but before it is forwarded for peer review, it will be screened for plagiarism.
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\n\nExternal reviewers will evaluate your manuscript and provide you with their feedback. You may be asked to revise your draft, or parts of your draft, provide additional information and make any other necessary changes according to their comments and suggestions.
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\n\n7. ONLINE PUBLICATION, PRINT AND DELIVERY OF THE BOOK
\n\nIntechOpen authors can choose whether to publish their book online only or opt for online and print editions. IntechOpen Compacts, Monographs and Edited Books will be published on www.intechopen.com. If ordered, print copies are delivered by DHL within 12 to 15 working days.
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For that purpose, ultra-wideband (UWB) radars operating in the frequency band DC-5 GHz can be used as a proper tool. The basic principle of respiratory motion detection consists in the identification of radar signal components possessing a significant power in the frequency band 0.2–0.7 Hz (frequency band of human respiratory rate) corresponding to a constant bistatic range between the target and radar. To tackle the task of detecting respiratory motion, a variety of methods have been developed. However, the problem of person localization based on his or her respiratory motion detection has not been studied deeply. In order to fill this gap, an approach for multiple person localization based on the detection of their respiratory motion will be introduced in this chapter.",book:{id:"5436",slug:"microwave-systems-and-applications",title:"Microwave Systems and Applications",fullTitle:"Microwave Systems and Applications"},signatures:"Daniel Novák, Mária Švecová and Dusan Kocur",authors:[{id:"83173",title:"Dr.",name:"Dusan",middleName:null,surname:"Kocur",slug:"dusan-kocur",fullName:"Dusan Kocur"},{id:"189768",title:"MSc.",name:"Daniel",middleName:null,surname:"Novák",slug:"daniel-novak",fullName:"Daniel Novák"},{id:"189769",title:"Dr.",name:"Mária",middleName:null,surname:"Švecová",slug:"maria-svecova",fullName:"Mária Švecová"}]},{id:"9964",doi:"10.5772/8747",title:"Physics of Charging in Dielectrics and Reliability of Capacitive RF-MEMS Switches",slug:"physics-of-charging-in-dielectrics-and-reliability-of-capacitive-rf-mems-switches",totalDownloads:5087,totalCrossrefCites:8,totalDimensionsCites:14,abstract:null,book:{id:"3623",slug:"advanced-microwave-and-millimeter-wave-technologies-semiconductor-devices-circuits-and-systems",title:"Advanced Microwave and Millimeter Wave Technologies",fullTitle:"Advanced Microwave and Millimeter Wave Technologies Semiconductor Devices Circuits and Systems"},signatures:"George Papaioannou and Robert Plana",authors:null},{id:"10352",doi:"10.5772/9061",title:"Dielectric Anisotropy of Modern Microwave Substrates",slug:"dielectric-anisotropy-of-modern-microwave-substrates",totalDownloads:3035,totalCrossrefCites:3,totalDimensionsCites:14,abstract:null,book:{id:"3707",slug:"microwave-and-millimeter-wave-technologies-from-photonic-bandgap-devices-to-antenna-and-applications",title:"Microwave and Millimeter Wave Technologies",fullTitle:"Microwave and Millimeter Wave Technologies from Photonic Bandgap Devices to Antenna and Applications"},signatures:"Plamen I. 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For macroscopic characterization, three properties of the material are often tested: complex permittivity, complex permeability and conductivity. Based on the experimental setup and sub-principle of measurements, microwave measurement techniques can be categorized into either resonant technique or nonresonant technique. In this chapter, calibration procedures for non-resonant technique are described. The aperture of open-ended coaxial waveguide has been calibrated using Open-Short-Load procedures. On the other hand, the apertures of rectangular waveguides have been calibrated by using Short-Offset-Offset Short procedures and Through-Reflect-Line calibration kits. Besides, the extraction process of complex permittivity and complex permeability of the material which use the waveguide systems is discussed. For one-port measurement, direct and inverse solutions have been utilized to derive complex permittivity and complex permeability from measured reflection coefficient. For two-port measurement, in general, the material filled in the waveguide has been conventional practice to measure the reflection coefficient and the transmission coefficient by using Nicholson-Ross-Weir (NRW) routines and convert these measurements to relative permittivity, εr and relative permeability, μr. In addition, this chapter also presents the calculation of dielectric properties based on the difference in the phase shifts for the measured transmission coefficients between the air and the material.",book:{id:"5436",slug:"microwave-systems-and-applications",title:"Microwave Systems and Applications",fullTitle:"Microwave Systems and Applications"},signatures:"Kok Yeow You",authors:[{id:"188673",title:"Dr.",name:"Kok Yeow",middleName:null,surname:"You",slug:"kok-yeow-you",fullName:"Kok Yeow You"}]},{id:"52960",title:"On-Wafer Microwave De-Embedding Techniques",slug:"on-wafer-microwave-de-embedding-techniques",totalDownloads:3521,totalCrossrefCites:0,totalDimensionsCites:0,abstract:"Wireless communication technology has kept evolving into higher frequency regime to take advantage of wider data bandwidth and higher speed performance. Successful RF circuit design requires accurate characterization of on-chip devices. This greatly relies on robust de-embedding technique to completely remove surrounding parasitics of pad and interconnects that connect device to measurement probes. Complex interaction of fixture parasitic at high frequency has imposed extreme challenges to de-embedding particularly for lossy complementary metal oxide semiconductor (CMOS) device. A generalized network de-embedding technique that avoids any inaccurate lumped and transmission line assumptions on the pad and interconnects of the test structure is presented. The de-embedding strategy has been validated by producing negligible de-embedding error (<−50 dB) on the insertion loss of the zero-length THRU device. It demonstrates better accuracy than existing de-embedding techniques that are based on lumped pad assumption. For transistor characterization, the de-embedding reference plane could be further shifted to the metal fingers with additional Finger OPEN-SHORT structures. The resulted de-embedded RF parameters of CMOS transistor show good scalability across geometries and negligible frequency dependency of less than 3% for up to 100 GHz. The results reveal the importance of accounting for the parasitic effect of metal fingers for transistor characterization.",book:{id:"5436",slug:"microwave-systems-and-applications",title:"Microwave Systems and Applications",fullTitle:"Microwave Systems and Applications"},signatures:"Xi Sung Loo, Kiat Seng Yeo and Kok Wai, Johnny Chew",authors:[{id:"189098",title:"Dr.",name:"Xi Sung",middleName:null,surname:"Loo",slug:"xi-sung-loo",fullName:"Xi Sung Loo"},{id:"189214",title:"Prof.",name:"Kiat Seng",middleName:null,surname:"Yeo",slug:"kiat-seng-yeo",fullName:"Kiat Seng Yeo"},{id:"189215",title:"Dr.",name:"Kok Wai, Johnny",middleName:null,surname:"Chew",slug:"kok-wai-johnny-chew",fullName:"Kok Wai, Johnny Chew"}]},{id:"52747",title:"Nonlinear Channel Equalization Approach for Microwave Communication Systems",slug:"nonlinear-channel-equalization-approach-for-microwave-communication-systems",totalDownloads:2194,totalCrossrefCites:0,totalDimensionsCites:1,abstract:"The theoretical principles of intersymbol interference (ISI) and channel equalization in wireless communication systems are addressed. Several conventional and well-known equalization techniques are discussed and compared such as zero forcing (ZF) and maximum likelihood (ML). The main section in this chapter is devoted to an abstract concept of equalization approach, namely, dual channel equalization (DCE). The proposed approach is flexible and can be employed and integrated with other linear and nonlinear equalization approaches. Closed expressions for the achieved signal-to-noise ratio (SNR) and bit error rate (BER) in the case of ZF-DCE and ML-DCE are derived. According to the obtained outcomes, the DCE demonstrates promising improvements in the equalization performance (BER reduction) in comparison with the conventional techniques.",book:{id:"5436",slug:"microwave-systems-and-applications",title:"Microwave Systems and Applications",fullTitle:"Microwave Systems and Applications"},signatures:"Modar Shbat, Francisco Ordaz-Salazar and Javier Salvador González-Salas",authors:[{id:"189618",title:"Prof.",name:"Modar",middleName:null,surname:"Shbat",slug:"modar-shbat",fullName:"Modar Shbat"},{id:"189620",title:"Prof.",name:"Francisco",middleName:null,surname:"Ordaz-Salazar",slug:"francisco-ordaz-salazar",fullName:"Francisco Ordaz-Salazar"},{id:"189621",title:"Prof.",name:"Javier Salvador",middleName:null,surname:"González-Salas",slug:"javier-salvador-gonzalez-salas",fullName:"Javier Salvador González-Salas"}]},{id:"60385",title:"Fractal Array Antennas and Applications",slug:"fractal-array-antennas-and-applications",totalDownloads:1212,totalCrossrefCites:1,totalDimensionsCites:2,abstract:"Modern celestial and other advanced wireless communication systems require feasible array antennas with reconfigurable multibeams, broadband, high end of coverage, high gain, less side-lobe level with wider side-lobe level angles, better signal-to-noise ratio and small in size than conventionally achievable. This has initiated array antenna research in different tracks, one of which is by using fractal array antennas. The investigation on fractal-shaped antennas is basically focused on two fundamental areas such as the analysis and design of fractal antenna elements and the application of fractal geometric technology to the design of array antennas. These recursively generated antennas provide new insights into the antenna properties due to their self-similar behaviour. Owing to the feasible geometric construction and advanced properties, fractal antennas find applications in advanced wireless communications, MIMO radars, satellite communications and space observations. This work concentrated here is primarily aimed on the design of fractal array antennas using concentric elliptical ring sub-array fractal geometric design methodology and the reduction of total number of antenna elements at higher expansion factors of both conventional and proposed fractal array antennas.",book:{id:"6318",slug:"emerging-microwave-technologies-in-industrial-agricultural-medical-and-food-processing",title:"Emerging Microwave Technologies in Industrial, Agricultural, Medical and Food Processing",fullTitle:"Emerging Microwave Technologies in Industrial, Agricultural, Medical and Food Processing"},signatures:"V. A. Sankar Ponnapalli and P. V. Y. Jayasree",authors:[{id:"210988",title:"Dr.",name:"V.A.Sankar",middleName:null,surname:"Ponnapalli",slug:"v.a.sankar-ponnapalli",fullName:"V.A.Sankar Ponnapalli"},{id:"210989",title:"Prof.",name:"V. Y. Jayasree",middleName:null,surname:"Pappu",slug:"v.-y.-jayasree-pappu",fullName:"V. Y. Jayasree Pappu"}]}],onlineFirstChaptersFilter:{topicId:"750",limit:6,offset:0},onlineFirstChaptersCollection:[{id:"82123",title:"Microwave-Assisted Pyrolysis Process: From a Laboratory Scale to an Industrial Plant",slug:"microwave-assisted-pyrolysis-process-from-a-laboratory-scale-to-an-industrial-plant",totalDownloads:4,totalDimensionsCites:0,doi:"10.5772/intechopen.104925",abstract:"One of the great challenges for the European Union (EU) is the “Circular Economy Package,” and to achieve this goal, materials at the end of their life cycle must be recycled using a sustainable process. In this way, as a thermochemical treatment, pyrolysis represents a significant opportunity so long it leads to the recovery of both energy and chemical content of mixed, contaminated, or deteriorated plastics. An excellent history of an academic-industrial adventure started in 2008 at the Department of Chemistry of the University of Florence demonstrates the possibility of employing microwaves to recycle plastics to preserve their energy and chemical content. After that, Techwave started industrialization of the process in 2019, realizing a small-scale prototype followed by a full-scale pilot plant using different plastic materials (e.g., polystyrene, acrylonitrile-butadiene-styrene (ABS), and polypropylene). Nowadays, the plant may process 90 kg/h of plastics with a low formation of char and gas and an interesting amount of liquid useful as a source of chemicals or fuel because it has an LHV of 35–43 kJ/kg. The Microwave-Assisted Pyrolysis (MAP) is an industrial novelty in plastic recycling, and it looks very promising for a much more modern and innovative plastic waste recovery system.",book:{id:"11145",title:"Recent Microwave Technologies",coverURL:"https://cdn.intechopen.com/books/images_new/11145.jpg"},signatures:"Marco Frediani, Piero Frediani, Gianni Innocenti, Irene Mellone, Roberto Simoni and Gianpaolo Oteri"},{id:"82420",title:"Applications of Microwaves in Medicine and Biology",slug:"applications-of-microwaves-in-medicine-and-biology",totalDownloads:7,totalDimensionsCites:0,doi:"10.5772/intechopen.105492",abstract:"This chapter deals with the description of recent research activities oriented on the perspective of microwave technologies in medicine and biology. It brings new ideas about the possibilities of using microwaves in thermotherapy—above all toward hyperthermia in cancer treatment. Development of new types of hyperthermia applicators (based, e.g., on technologies such as metamaterials, evanescent modes in waveguides, and other types of transmission structures) will be discussed here. Furthermore, we would like to underline in this chapter perspectives of microwaves in medical diagnostics. It is possible to expect that, e.g., microwave differential tomography, UWB radar, and microwave radiometers (all three can be used both for medical diagnostic and for noninvasive temperature measurement) will soon play an important role in it. Finally, experimental equipment necessary for research on the biological effects of EM fields is presented.",book:{id:"11145",title:"Recent Microwave Technologies",coverURL:"https://cdn.intechopen.com/books/images_new/11145.jpg"},signatures:"David Vrba, Jan Vrba, Ondrej Fiser, Jesus Cumana, Milan Babak and Jan Vrba Senior"},{id:"81917",title:"Fluidics for Reconfigurable Microwave Components",slug:"fluidics-for-reconfigurable-microwave-components",totalDownloads:11,totalDimensionsCites:0,doi:"10.5772/intechopen.104857",abstract:"Dielectric and conducting liquids with varying electromagnetic properties can offer novel alternatives for building tunable microwave passive components as well as antennas. Injecting these fluidics in or around microwave substrates alters their overall electrical characteristics, enabling circuit reconfigurability. Alternatively, changing the shapes and dimensions of conductors by using liquid metals can achieve similar reconfigurability. An overview of different liquids and their electromagnetic properties is first given. The principles behind the reconfigurability of the electrical characteristics of typical guiding structures based on mode shape variation in the presence of fluids are discussed. The realization of an N-bit programmable impedance tuner in 3D LTCC technology based on these principles is presented.",book:{id:"11145",title:"Recent Microwave Technologies",coverURL:"https://cdn.intechopen.com/books/images_new/11145.jpg"},signatures:"Dorra Bahloul, Ines Amor and Ammar Kouki"},{id:"82046",title:"One Model of Microwave Heating of Water Drop",slug:"one-model-of-microwave-heating-of-water-drop",totalDownloads:7,totalDimensionsCites:0,doi:"10.5772/intechopen.104949",abstract:"This work deals with the modeling of microwave heating of a water drop. A drop model is reduced to its electric dipoles, masses, and charges are constructed using the associating of COMSOL Multiphysics and Matlab software. The considered model proposes a microscopic point of view on microwave heating, which transforms electrical energy into heat.",book:{id:"11145",title:"Recent Microwave Technologies",coverURL:"https://cdn.intechopen.com/books/images_new/11145.jpg"},signatures:"Serge Lefeuvre and Olga Gomonova"},{id:"82076",title:"Power Divider/Combiner",slug:"power-divider-combiner",totalDownloads:14,totalDimensionsCites:0,doi:"10.5772/intechopen.104911",abstract:"With the remarkable progress in the use of Internet of Things (IoT) and 5G, there is a demand for higher performance such as miniaturization, broadband/multiband, low loss, and high integration for several microwave circuits. This chapter treats microwave power dividers/combiners used in amplifiers, mixers, phase shifters, antenna feeding networks, and so on. Here, the treated circuits are composed of LC-ladder circuits and an absorption resistor. It shows that multiband (dual-band and tri-band) and broadband can be achieved by changing the number of stages of the LC-ladder circuit. In addition, the effectiveness of this design method is demonstrated by electromagnetic simulations and prototype experiments.",book:{id:"11145",title:"Recent Microwave Technologies",coverURL:"https://cdn.intechopen.com/books/images_new/11145.jpg"},signatures:"Tadashi Kawai, Ayumu Tsuchiya and Akira Enokihara"},{id:"82035",title:"Orbital Angular Momentum Wave and Propagation",slug:"orbital-angular-momentum-wave-and-propagation",totalDownloads:33,totalDimensionsCites:0,doi:"10.5772/intechopen.104477",abstract:"Orbital angular momentum (OAM) techniques are exploited for a wide range of potential radiofrequency (RF) and electromagnetic applications, including megahertz-through-terahertz wireless systems, fiber-based and free-space optical communications and sensing, just like acoustic and any other wave-based counterparts. In those RF and electromagnetic applications, OAM wave is set to enable the development of high-speed and high-capacity communications, radar imaging, and sensing systems, among many others. In this chapter, a comprehensive comparison between plane wave and OAM wave propagation using a patch antenna as a radiator at 2.45 GHz is presented and discussed. This comparison allows the appreciation of the fundamental properties of the OAM wave when compared against its plane wave counterpart. For simplified comparison and discussion, we will use two abbreviated terms: PWPA for plane-wave patch antenna and OWPA for OAM wave patch antenna. PWPA refers to as planar patch antenna that produces plane waves in far-field, whereas patch antenna that delivers OAM waves in far-field is termed as OWPA. In this context, all physical quantities for wave propagation such as electric field, magnetic field, wave impedance, wave vector, velocity, pitch, and propagation constant are theoretically studied for OAM waves and compared with plane waves. First, OAM wave generation is studied through widely used uniform circular antenna array (UCAA) in literature. Then, plane wave patch antenna (PWPA) and OAM wave patch antenna (OWPA) are designed and verified through simulation and measurement. OWPA is designed with characteristic mode analysis (CMA) based on a lossy substrate to excite a twisting wave at a determined patch location. With this in mind, a comparative investigation of PWPA and OWPA is conducted for different physical parameters. Cylindrical near-field scan clearly shows a helical wave motion for OWPA, whereas a normal plane wave motion for PWPA. Furthermore, the comparison of plane wave and OAM wave propagation is demonstrated using the combination of a Tx–Rx antenna pair. It is observed that the overall signal from OWPA can be received with two PWPAs at an angle as OWPA has a dispersive beam. Moreover, the receiving antenna with a large aperture and plane wave horn antenna (PWHA) in the line of sight (LOS) range can also be used to receive the overall signal from OWPA. The received signal in PWPA–PWPA, OWPA–OWPA, OWPA–PWPA–PWPA, OWPA–PWHA Tx–Rx pairs is thoroughly compared and studied. Measured and simulated results for transmission are −30 dB for 0 dB input signal in OWPA–PWPA–PWPA and OWPA–PWHA cases, which are reasonably justified within the sensitivity/dynamic range of short-distance communication and radar sensing receivers.",book:{id:"11145",title:"Recent Microwave Technologies",coverURL:"https://cdn.intechopen.com/books/images_new/11145.jpg"},signatures:"Pankaj Jha and Ke Wu"}],onlineFirstChaptersTotal:14},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:89,numberOfOpenTopics:6,numberOfUpcomingTopics:0,issn:"2633-1403",doi:"10.5772/intechopen.79920",isOpenForSubmission:!0},{id:"7",title:"Biomedical Engineering",numberOfPublishedBooks:12,numberOfPublishedChapters:104,numberOfOpenTopics:3,numberOfUpcomingTopics:0,issn:"2631-5343",doi:"10.5772/intechopen.71985",isOpenForSubmission:!0}],lsSeriesList:[{id:"11",title:"Biochemistry",numberOfPublishedBooks:32,numberOfPublishedChapters:318,numberOfOpenTopics:4,numberOfUpcomingTopics:0,issn:"2632-0983",doi:"10.5772/intechopen.72877",isOpenForSubmission:!0},{id:"25",title:"Environmental Sciences",numberOfPublishedBooks:1,numberOfPublishedChapters:12,numberOfOpenTopics:4,numberOfUpcomingTopics:0,issn:"2754-6713",doi:"10.5772/intechopen.100362",isOpenForSubmission:!0},{id:"10",title:"Physiology",numberOfPublishedBooks:11,numberOfPublishedChapters:141,numberOfOpenTopics:4,numberOfUpcomingTopics:0,issn:"2631-8261",doi:"10.5772/intechopen.72796",isOpenForSubmission:!0}],hsSeriesList:[{id:"3",title:"Dentistry",numberOfPublishedBooks:8,numberOfPublishedChapters:129,numberOfOpenTopics:2,numberOfUpcomingTopics:0,issn:"2631-6218",doi:"10.5772/intechopen.71199",isOpenForSubmission:!0},{id:"6",title:"Infectious Diseases",numberOfPublishedBooks:13,numberOfPublishedChapters:113,numberOfOpenTopics:3,numberOfUpcomingTopics:1,issn:"2631-6188",doi:"10.5772/intechopen.71852",isOpenForSubmission:!0},{id:"13",title:"Veterinary Medicine and Science",numberOfPublishedBooks:11,numberOfPublishedChapters:106,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:19,numberOfOpenTopics:3,numberOfUpcomingTopics:0,issn:"2753-894X",doi:"10.5772/intechopen.100359",isOpenForSubmission:!0},{id:"23",title:"Education and Human Development",numberOfPublishedBooks:0,numberOfPublishedChapters:5,numberOfOpenTopics:1,numberOfUpcomingTopics:1,issn:null,doi:"10.5772/intechopen.100360",isOpenForSubmission:!0},{id:"24",title:"Sustainable Development",numberOfPublishedBooks:0,numberOfPublishedChapters:15,numberOfOpenTopics:5,numberOfUpcomingTopics:0,issn:null,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:"24",title:"Sustainable Development",doi:"10.5772/intechopen.100361",issn:null,scope:"\r\n\tThe environment is subject to severe anthropic effects. Among them are those associated with pollution, resource extraction and overexploitation, loss of biodiversity, soil degradation, disorderly land occupation and planning, and many others. These anthropic effects could potentially be caused by any inadequate management of the environment. However, ecosystems have a resilience that makes them react to disturbances which mitigate the negative effects. It is critical to understand how ecosystems, natural and anthropized, including urban environments, respond to actions that have a negative influence and how they are managed. It is also important to establish when the limits marked by the resilience and the breaking point are achieved and when no return is possible. The main focus for the chapters is to cover the subjects such as understanding how the environment resilience works, the mechanisms involved, and how to manage them in order to improve our interactions with the environment and promote the use of adequate management practices such as those outlined in the United Nations’ Sustainable Development Goals.
",coverUrl:"https://cdn.intechopen.com/series_topics/covers/39.jpg",keywords:"Anthropic effects, Overexploitation, Biodiversity loss, Degradation, Inadequate Management, SDGs adequate practices"},{id:"38",title:"Pollution",scope:"\r\n\tPollution is caused by a wide variety of human activities and occurs in diverse forms, for example biological, chemical, et cetera. In recent years, significant efforts have been made to ensure that the environment is clean, that rigorous rules are implemented, and old laws are updated to reduce the risks towards humans and ecosystems. However, rapid industrialization and the need for more cultivable sources or habitable lands, for an increasing population, as well as fewer alternatives for waste disposal, make the pollution control tasks more challenging. Therefore, this topic will focus on assessing and managing environmental pollution. It will cover various subjects, including risk assessment due to the pollution of ecosystems, transport and fate of pollutants, restoration or remediation of polluted matrices, and efforts towards sustainable solutions to minimize environmental pollution.
",coverUrl:"https://cdn.intechopen.com/series_topics/covers/38.jpg",keywords:"Human activity, Pollutants, Reduced risks, Population growth, Waste disposal, Remediation, Clean environment"},{id:"41",title:"Water Science",scope:"