Statistic information obtained by measuring the diameters of silica particles from the different samples.
\r\n\tWe are living in a particularly challenging historical moment. People have learned that no matter how much they control their lives, their environment, and their relationships, everything can be changed instantly, at the fancy of a virus that does not respect age, nationality, ancestry, intelligence, or skills. People learned that the limitless power of science and technology was purely illusory, in the face of an absolute and overwhelming force of nature that was almost no longer recognized. After all, the balance of forces between Nature and science and technology was inevitably shaken and the certainties with which people built their lives were jeopardized by an unpredictable and constantly changing reality. Uncertainty is one of the biggest challenges we face today. Never, as today, people management can make such a difference in their future, both personally and professionally.
\r\n\r\n\t
\r\n\tCHROs need to decide where to focus their resources and attention, select their action priorities. This book will aim to provide the reader with a comprehensive overview of the new challenges of people management and provide keys to (re)think about the new/renewed challenges that the new times, the new “normals” place on those who manage people. From the strategic management of HR to people analytics and HR IT architecture and operation, through the new practices of remote work, this book aims to reflect on the future(s) of people management, illuminating trends and reflecting on potential risks or promising achievements.
There are hundreds of types of cancer, and each one has different characteristics [1]. Therefore, science utilizes the most innovative discoveries in an effort to find new treatments, and nanotechnology offers a wide variety of options. One example of this is the nanoparticle colloids. They can be designed to concentrate on specific organs (passive targeting), or their surfaces can be modified by an antibody or ligand to get attached to a specific target (active targeting) [2]. Furthermore, metallic nanoparticles, like GNS, present interesting optical properties. The shell, formed by GNPs, confines the plasmons to the surface of the particle, changing the plasmon frequency of the gold. Therefore, the GNSs absorb different wavelengths than gold in bulk. Moreover, when the wavelength of the incident light is larger than the size of the nanoparticle exciting the plasmons at their natural resonance frequency, light is absorbed more strongly causing an increase in temperature. When the GNSs are synthesized with specific geometry and dimensions, their SPR changes causing their absorption to shift to the NIR region of the electromagnetic spectrum [3]. This shift offers a great potential for applications in the medical field because GNPs are bio-inert [4], and the cytotoxicity of the silica has been widely studied [5]. Additionally, the wavelengths of the NIR spectrum are considered the optical window of the human body. As a result, while most biological soft tissues have low absorption of these wavelengths [6], GNSs absorb them causing them to increase their temperature.
\nGNSs have been synthesized over different templates. Polystyrene cores claim to offer a narrower plasmon resonance absorption peak due to their higher reflective index [7]; iron oxide nanoparticles present a superparamagnetic template useful for magnetic resonance imaging [8]; silver nanoparticles have also been used as a mold for hollow gold nanoshells [9]. However, the functionalization of the polystyrene takes more time, reactants, and supervision which increases the chances of error as compared with the functionalization of the silica. Besides, the cytotoxicity of the silica nanoparticles makes them a good option for medical applications. Moreover, once the GNS is produced, the silica core can be diluted with hydrochloric acid to obtain hollow gold nanoparticles [10] that can be used for the controlled release of drugs [11] due to their capacity for encapsulating sensitive materials and their low thermal expansion coefficient. Therefore, providing a simpler and more efficient method of synthesis of GNS on silica templates provides a more promising variety of applications like for photothermal therapy [12], optical imaging [13], and drug release [2], as well as providing a near instantaneous in situ whole blood assay [14].
\nThe synthesis of the GNSs has been extensively explored. Different methods, like reflux systems [15] or flow micro-reactors [16], can be used as well as procedures involving high temperatures [17]. But most of those methods last over 30 h [18]. In this chapter, we present a simple and effective method of preparation that shortens the time of the traditional procedures published before and uses only a magnetic stirrer with heating for the synthesis.
\nThe reductions of the time were obtained by first modifying the Stöber method of synthesis of silica particles from 2 h to 30 min Samples were obtained at 30, 60, 90, and 120 min throughout the reaction to determine the minimum time of reaction needed. Also, the seeding process can be shortened from 2 h to 30 min. During the seeding process, where the silica is decorated with GNPs, a sample was obtained using only 30 min of resting time and compared with another sample obtained after the full 2 h of the resting time previously suggested. In both cases, SEM images were obtained showing that 30 min were sufficient to accomplish the synthesis of the silica as well as their seeding. In consequence, the total time of the process was reduced by 3 h.
\nThe “Birth of Nanotechnology” was the title used by David Thompson [19] on his article acknowledging Michael Faraday’s synthesis of gold nanoparticles in 1857. What Faraday called “Colloidal Ruby Gold” [20] was, in fact, a solution of dispersed GNPs so small that no microscope of that time was able to observe them. It wasn’t until 1985 that Turkevich et al. [21] used an electron microscope to corroborate that Faraday’s ruby gold was formed by GNPs with an average size of 6 ± 2 nm. Separately, in 1967 Werner Stöber et al. developed a method of synthesizing silica spheres in the micron size range [22] to be used especially in the medical field due to its known cytotoxicity, and in 1998 they were used by Naomi Halas et al. as the templates of GNS [23].
\nEthanol (100%), tetraethyl orthosilicate (TEOS) (98%), 3-aminopropyltriethoxysilane (APTES) (99%), trisodium citrate dihydrate, gold (III) chloride trihydrate (HAuCl4, 49%), formaldehyde (37%), and sodium borohydride (NaBH4, 98%) were purchased from Sigma-Aldrich. Potassium carbonate (K2CO3, 99%) and ammonium hydroxide (28%) were purchased from J.T. Baker. All the solutions were prepared with deionized water.
\nImages were obtained using the field-emission scanning electron microscope (SEM, JEOL JSM-7401F) and the transmission electron microscope (TEM, HT7700 Hitachi). For the ultraviolet-visible (UV-Vis) spectra, the Evolution 220 spectrophotometer UV-Vis (Thermo Scientific) was used. The FTIR spectra were obtained with an IRAffinity-1S Fourier transform infrared spectrophotometer (Shimadzu). The sample was irradiated with an 820 nm wavelength/3.1 mW laser (Multi-Channel Fiber-Coupled Laser Source, Thorlabs), and the infrared images were taken with a Non-contact Digital IR Thermometer (TrueIR Agilent Keysight U5855A). Measurement of the particles and histograms were acquired with the Image J® software [24].
\nSilica particles were prepared by modifying the Stöber method [22]. About 50 ml of ethanol, 2.5 ml of deionized water, and 4.25 ml of ammonium hydroxide were magnetically stirred in an 80 ml glass flask for 5 min. Then, 0.75 ml of TEOS was added dropwise. The solution was heated at 40°C. Temperature and agitation were kept for 2 h. The color of the solution changed from transparent to opaque white approximately 10 min after adding the TEOS as shown in Figure 1. This time corresponds to the induction period needed to form the SiO2 nucleus from the concentration used of the TEOS monomer [25]. Samples were obtained at 30, 60, 90, and 120 min after adding the TEOS to observe the evolution of the process.
\nImages of the synthesis of SiO2 particles: (a) right after adding TEOS, (b) at 10 min of reaction, (c) at 30 min of reaction, and (d) at 2 h of reaction.
In order to create open links over the silica to attach the GNPs, the silica was functionalized with APTES on a 1 ml:1 μl silica/APTES volume ratio. About 50 ml of the silica template solution was magnetically stirred for 5 min with 50 μl of APTES in an 80 ml glass flask. The solution was left still overnight at room temperature. The opaque white functionalized silica particles precipitated in the solution leaving a clear fluid at the top. To separate the functionalized silica, the mixture was centrifuged at 6000 rpm for 1.5 min and washed in deionized water three times. Finally, they were sonicated in 20 ml of deionized water final volume.
\nThe method presented by Abdollahi et al. [10] was followed to elaborate the GNPs. First, 100 ml of deionized water at room temperature was placed in a 140 ml flask under magnetic agitation. Then 1 ml of 1% HAuCl4 solution, 2 ml of 1% trisodium citrate, and 1 ml of freshly made 0.075% NaBH4 in 1% trisodium citrate were added in that order. The mixture was stirred for 10 min and used immediately to avoid the agglomeration. The GNP may also be stored at 4°C in an amber glass bottle for later use.
\nThroughout the synthesis, the gold solution changed its color from light yellow (Figure 2a) to wine red (Figure 2b). This is a characteristic of the GNP formation [26].
\nSynthesis of GNPs at (a) the beginning of the reaction and (b) after 10 min of reaction.
For the seeding process, 100 ml of GNPs and 10 ml of functionalized silica were magnetically stirred in a 140 ml glass flask for 5 min as shown in Figure 3a. Then, it was left still for 2 h. Figure 3b presents how the seeded silica spheres precipitated and changed their color from opaque white to lavender, while the mother solution changed from wine red to transparent. The mixture was centrifuged at 6000 rpm for 2 min and washed in deionized water three times. Finally, it was sonicated in 20 ml of deionized water final volume. The same procedure was followed, but the solution was left still for only 30 min to observe the development of the seeding process through time.
\nImages at (a) the beginning of the seeding process and (b) after 2 h of resting time.
For the shell growth process, a gold hydroxide solution was prepared by mixing 100 ml of 2 mM K2CO3 solution and 1.5 ml of 1% HAuCl4 in a 140 ml glass flask for 30 min. The color of the solution changed from light yellow (Figure 4a) to transparent (Figure 4b). It was left still overnight at room temperature in an amber glass bottle to facilitate the formation of Au(OH)4¯ ions [18].
\nImages illustrating the change of color of the gold hydroxide solution at (a) the beginning of the synthesis (light yellow) and (b) 30 min of reaction (transparent).
The shell was developed from the gold seeds deposited over the functionalized silica particles with the help of the Au(OH)4¯ ions. About 100 ml of the gold hydroxide solution (Figure 5a) and 5 ml of seeded silica were magnetically stirred in a 140 ml glass flask for 5 min (Figure 5b). Next, 5 ml of formaldehyde was added to the solution (Figure 5c) and stirred for 10 min (Figure 5d). The solution was left still for 50 min. Finally, it was centrifuged at 6000 rpm for 2 min, washed, and dispersed in 10 ml of deionized water final volume.
\nImages of the shell growing process. (a) Gold hydroxide solution, (b) gold hydroxide + seeded silica, (c) gold hydroxide + seeded silica + formaldehyde, and (d) solution after 10 min of reaction.
To obtain the IR images, first, the 820 nm wavelength laser was fastened to the support for it to aim directly to the sample (Figure 6a). Then the Digital IR thermometer was also secured and directed to the GNS (Figure 6b). Next, the laser was connected to the Multi-channel laser source (Figure 6c). Finally, the channel with the desired wavelength was selected (Figure 6d), and the irradiation was started.
\nImages of the installation of the (a) 820 nm wavelength laser, (b) non-contact digital IR thermometer, (c) connection to the multi-channel laser source, and (d) selection of the channel with the desired wavelength.
TEM images obtained from the silica samples taken at 30, 60, 90, and 120 min after adding the TEOS are presented in Figure 7. When comparing the images, no significant variation in the size of the silica particles is noticeable.
\nTEM images of silica particles at (a) 30, (b) 60, (c) 90, and (d) 120 min after adding TEOS.
To corroborate that the silica particles do not change substantially when the reaction time is over 30 min, the images were studied with the software Image J®, and the diameter distribution of the particles was analyzed. Over 1000 particles from the different samples were measured to obtain the histograms presented in Figure 8 where samples A, B, C, and D correspond to 30, 60, 90, and 120 min of reaction time, respectively. They illustrate that the diameter distribution of the silica spheres throughout the synthesis oscillates around the 190 ± 5 nm on all the samples.
\nHistograms illustrating the diameter distribution of the silica particles throughout their synthesis.
To have a better understanding of the information, Table 1 contains useful statistic information from the samples.
\n\n | Count | \nMean | \nStd dev. | \nMode | \n
---|---|---|---|---|
Sample A | \n250 | \n187 | \n25 | \n197 (79) | \n
Sample B | \n287 | \n162 | \n18 | \n162 (80) | \n
Sample C | \n265 | \n196 | \n16 | \n201 (92) | \n
Sample D | \n250 | \n197 | \n13 | \n198 (105) | \n
Statistic information obtained by measuring the diameters of silica particles from the different samples.
The mean, standard deviation, and mode obtained after analyzing the samples show that, in general, the silica templates keep their size and shape after 30 min of synthesis. Therefore, the objective of synthesizing silica particles with diameters of 190 ± 5 nm was achieved within 30 min of reaction time. More than 30 min of synthesis does not result in any relevant change in the sample. For this reason, the total process time can be reduced from 2 h to 30 min, shortening the reaction time by 1 h and 30 min when compared with similar published works where the synthesis time is at least 2 h [10, 17, 27, 28].
\nThe functionalization of the silica with a primary amine group (–NH2) was accomplished by the use of APTES which changed the superficial charge of the silica providing an electrostatic link for the GNPs to attach [29]. This superficial modification was verified by the FTIR spectrum shown in Figure 9 where the vibrations of primary amines are found between 3550 and 3330 cm−1 which correspond to the vibrations of a primary amine group [30].
\nFTIR spectrum of silica particles and silica particles functionalized with APTES.
The GNPs were analyzed under a TEM. Figure 10 illustrates the GNPs with a diameter of 7 ± 3 nm and spherical shape overall.
\nTEM images of GNPs.
The seeding process was followed with 2 h of still time as well as with 30 min of still time. The first and second samples were observed under the microscope. The samples were taken with the purpose of observing the development of the seeds. Figure 11a presents an SEM image of seeded silica with 30 min of resting time, while Figure 11b presents an SEM image of seeded silica with 2 h of resting time. The images show that 30 min is enough time to create the seeds because both images display approximately the same number of nucleus per silica particle.
\nSEM images illustrating the seeding process with (a) 30 min of resting time and (b) 2 h of resting time.
Even though a complete shell was not formed, the seeds are ready to grow the gold shell on the next step. A TEM image of a seeded silica particle is presented in Figure 12. This image corroborates the seeding process as well as the silica functionalization.
\nTEM image of a gold decorated silica particle.
Figure 13a and b presents SEM and TEM images of the synthesized GNS, respectably. They illustrate that the silica particles are almost surrounded by gold. The higher density of gold, the separation of the GNPs [31], and the dielectric properties of the silica [3] contribute to the absorption of the NIR wavelength, which causes the increase in temperature.
\n(a) SEM and (b) TEM images of GNS.
Figure 14 presents the UV-Vis spectrum of the particles through the process. Silica particles, as well as functionalized silica particles, do not show significant absorption on the NIR. As for the GNPs, they exhibit their characteristic absorption between 520 and 530 nm [29]. However, on the seeded silica particles, the slight shift to the NIR is noticeable. While on the GNS, the peak not only shifted to the NIR, but it kept a high absorbance all the way to 1100 nm. This range is part of the optical window of the human body [5]. The absorbance of the GNSs is due to the SPR that creates an electric field on the surface increasing the absorption of these wavelengths. SPR happens when metal nanoparticles are irradiated with a wavelength bigger than their size, exciting the electrons of the conducting band [2].
\nUV-Vis spectrum of (a) silica, (b) functionalized silica, (c) gold nanoparticles, (d) gold seeded silica, and (e) gold nanoshells.
To verify the absorbance of the GNS, they were irradiated with an 840 nm laser with a power of 3.1 mW. Figure 15a and b displays the thermography images of the sample while being irradiated at time zero and 2 min later. The temperature of the sample increased from 24.7 to 31.0°C. This confirms that GNSs are able to absorb light from the NIR and convert it in heat.
\nThermography images of the GNS taken (a) before and (b) after being irradiated with 840 nm wavelength laser for 2 min.
Synthesizing GNS by seeding and growing a gold shell over silica spheres with GNPs showed to be an effective method to tune their absorption to the NIR. The SEM and TEM images show the evolution of the process, while the absorbance spectrum displays the GNS shifting over the NIR. Therefore, we obtained a simple technique of producing GNS that can be used for medical applications thanks to the bio-inert GNPs [3] and the widely studied cytotoxicity of the silica [5]. This method does not require long periods of time, when compared with previously published mechanisms, and does not need sophisticated equipment.
\nWe thank Consejo Nacional de Ciencia y Tecnologia (Conacyt) and Centro de Investigacion en Materiales Avanzados (CIMAV) for the financial support, Dr. Jose Guadalupe Murillo Ramirez for his help with the use of 852 nm wavelength laser, Dr. Pedro Piza for lending us the thermographic camera, Ing. Wilber Antunez Flores, and M.C. Karla Campos Venegas for helping us obtain the TEM and SEM images.
\n\n gold nanoshells surface plasmon resonance near-infrared 3-aminopropyltriethoxysilane gold nanoparticles transmission electron microscope scanning electron microscope tetraethyl orthosilicate
Microbes are the most diverse organisms on the planet, both in terms of species and in terms of driving vital Earth system operations like the carbon cycle. The majority of this microbial biodiversity is found in soils [1]. According to Lederberg and McCray [2], the term microbiome refers to “the biological community of commensal, symbiotic, and pathogenic microbes that share human body space.” This term grew in popularity as its definition evolved from organisms as taxonomic units (i.e., microbiota) to a collective genetic material throughout the years. However, as the term’s popularity grew, there are various definitions of the term microbiome in the scientific literature.
Nowadays, most “microbiome” research focuses solely on bacteria, and the term “microbiome” is used interchangeably with “bacteria.” As a result, new words for various microbial groupings have emerged, such as mycobiome, which refers to fungi, virome for the viruses, and eukaryome for the microbial eukaryotes [3]. Furthermore, the composition of microbiomes is known to change across time and space, making it difficult to find consistent and dependable sources of specific microbiomes [4]. The microbiome of the Earth accounts for almost half of all biomass on the globe [1]. Recent advances in DNA sequencing techniques have expanded our understanding of microbial biogeography, particularly among bacteria and fungi [5, 6]. Currently, the diverse composition of soil microbial community is widely known worldwide. The soil microbiome governs the biogeochemical cycling of macronutrients, micronutrients, and other elements that are vital for plants growth and animal life.
Microbiomes play an important role in a variety of biogeochemical processes, including the carbon and nitrogen cycles, which are necessary for ecosystems to function properly and sustainably. What functions do bacteria play in nutrient cycling and carbon sequestration to support the forests? It is critical to investigate the dynamics of microbial communities in order to comprehend their vital function in such a unique ecosystem. Acknowledging microbial ecology will aid in their management practices and protection, allowing peat accretion to continue and their carbon sequestration capacity to be protected [7].
The significance of soil microbiome activity in the soil ecosystem dynamics demands special consideration, as it promotes soil health and plant productivity [8]. Soil microbial activity is a possible indicator of soil quality as it responds quickly to changes in soil management and the environment. The carbon in crop residues moves
Soil characteristics such as pH, carbon, and nitrogen have been shown to influence soil microbial diversity and biogeography [11]. As a result, changes in the structure and behavior of soil microbial communities are more likely to be caused by differences in soil characteristics. Aside from that, soil organic matter (SOM) is critical to the function and quality of the soil. The high amount of SOM could increase nutrient availability while also improving the physical and biological features of the soil [12]. The level of soil organic carbon (SOC) is used to quantify the amount of SOM, and changes in SOC have an impact on the carbon (C) and nitrogen (N) cycles in terrestrial ecosystems [13]. The combined effects of chemical and biological features of the soil will affect the organic C and N fractions in organic compounds. As a result, understanding the processes that determine soil fertility, which is critical in farmland production systems, requires knowledge of soil microbial community dynamics and the factors that influence those dynamics in croplands.
The technique of increasing soil carbon storage by reducing net CO2 emissions in agricultural soils is known as carbon sequestration. Soil carbon sequestration (SCS) is the process of absorbing C-containing compounds from the atmosphere and storing them in soil C pools. Variations in the ability to store carbon in soils have been linked to the activity of the soil microbial community (SMC). The turnover and supply of nutrients, as well as the rate of decomposition of SOM, are all influenced by the structure and activity of the SMC, which is crucial for the maintenance of soil ecosystem services. As a result, the influence of farming activities on SMC and SCS should be quantified as part of any soil management practice’s sustainability evaluation.
Because a big fraction of the biomass is produced in agricultural systems cycles
Raising the C content of agricultural soils is a well-known technique. The equilibrium between C inputs from plant residues and C losses, primarily through decomposition, determines the soil C levels. The increasing residue inputs and/or delaying breakdown rates (i.e., heterotrophic soil respiration) also govern the C level in soils. The relationship between C inputs and SOC levels could be straightforward; in which many agricultural soils’ steady-state C contents have been shown to be linearly related to C input levels, that is compatible with the current SOM dynamics theory [14]. This may not be the case in soils with exceptionally high quantities of carbon, which may exhibit “saturation” behavior.
The following factors must be considered when developing soil carbon sequestration management practices and policies: Soils have a finite capacity to store carbon, gains in soil carbon can be reversed if proper management is not maintained, and fossil fuel inputs for various management practices must be factored into the total agricultural CO2 balance [15].
The interaction of numerous ecosystem activities, the most important of which are photosynthesis, respiration, and decomposition, results in the SOC level. Photosynthesis is the process of converting atmospheric CO2 into plant biomass. The root biomass of a plant determines the majority of SOC ingestion rates, however, litter deposited by plant shoots also plays a role. The growth and death of plant roots, as well as the transfer of carbon-rich molecules from roots to soil microbes, produce carbon in the soil both directly and indirectly.
Decomposition of biomass by soil microbes leads to carbon loss as CO2 as a result of microbial respiration. Through the formation of humus, a material that gives carbon-rich soils their unique black hue, a small fraction of the original carbon is kept in the soil (Figure 1). These various forms of SOC differ in their recalcitrance, or resistance to decomposition. Humus is a recalcitrant plant that takes a long time to degrade, resulting in a long period of time spent in the soil. Plant waste is less abrasive; therefore, it stays in the soil for a shorter period of time. When carbon imports and outputs are in equilibrium, there is no net change in SOC levels. When carbon inputs from photosynthesis exceed carbon losses, SOC levels rise over time.
Carbon inputs from photosynthesis and carbon losses from respiration govern the carbon balance within the soil. Humus, long-lived storage of SOC, is formed through the decomposition of roots and root products by soil bacteria. Created with
The effects of climate change on soil functions, including soil carbon, is a complex subject since numerous direct and indirect factors are involved. For instance, the atmospheric temperature may affect the rate of SOM decomposition, a process that could release greenhouse gases that contribute to climate change [16]. The effects of moisture and temperature due to climate change will be highlighted as key parameters since soil humidity and temperature are among the most important variables in determining microbial activity and therefore SOC [17].
One of the most critical effects of climate change on soil is the alteration of rainfall patterns, resulting in intense rain and drought. These phenomena may be beneficial or detrimental according to the agricultural activities and climatic requirements, but they present economic challenges nonetheless [18]. The selective migration of soil particles, where fine particles and micro-aggregates are transported
Interaction of diverse factors affecting soil as C source or sink.
Among the most consistent narrative of climate change is climate warming as a result of rising temperature [20]. Climate warming has been associated mainly with SOC decomposition due to the effects of temperature on soil microbial community and their enzymatic and metabolic activities. Unlike the effects of moisture, however, the dynamic relationship between temperature and soil C is less certain and more constrained. In general, elevated atmospheric temperature could also elevate soil temperature, which would subsequently elevate microbial processes and SOC decomposition rate [21]. This is not always the case due to the difference in temperature sensitivity of soil biota, especially the microbial community, where the higher-temperature sensitivity such as in colder regions exhibited more enhanced soil respiration, potentially resulting in a net efflux of C toward increased atmospheric CO2 in comparison with those inhabiting soils in hotter regions [22]. In contrast, a higher rate of microbial OM decomposition was reported in hotter regions, suggesting other environmental factors that may affect the SOC, including topography, soil texture, and pH. Ultimately, climate warming leads to decreased SOC input and increased SOC output [23].
Agronomic management involves a combination of soil and crop management practices that when appropriately applied will improve soil performance and nutrient availability, and contribute to better growth and higher crop yield [24]. These management practices can be further categorized into an untargeted approach based on common agricultural practices, or targeted approaches based on specific interactions between soil and plant. Targeted approaches often involve biotechnological applications such as biofertilizers and biostimulants. Regardless of the type of approach, the soil microbiome will be affected either directly or indirectly. Considering that the soil microbiome is regarded as the primary organism that may influence the overall plant health due to its close interaction with plant roots, applying the right management practice is crucial toward achieving the goal of food security for the growing global population [25]. Therefore, soil microbiome must not be overlooked in agronomic management practice especially when SOM is concerned due to its major role in soil C pool. For instance, additional OM applications may result in increased decomposition and reduced C storage due to reduced microbial C use efficiency, positive priming effect from enhanced mineralization of SOM, as well as increased C skimming due to accumulation of microbial products and residues, or necromass over time [26].
SOC is known to be directly influenced by the stabilization and decomposition of SOM. Therefore, agronomic management that boosts SOM such as fertilization, conservation tillage, cover cropping, and crop rotation will also affect SOC [27]. More importantly, soil biotic and abiotic factors such as texture, moisture, C/N ratio, SOC content, pH, climate, vegetation, and land use also affect the persistence of SOM, and ultimately the C pools [28]. It is due to the complex interactions of these various factors that it is uncommon for an ecosystem to change from a net C source to a C sink in a relatively short time [29]. Thus, agronomic management practice must take into account the most appropriate way to minimize its impact on climate change [27].
Crop management refers to a collection of agricultural activities aimed at enhancing crop growth, development, and production. It starts with seedbed preparation, seed sowing, and crop maintenance and concludes with crop harvest, storage, and commercialization. Although fertilization not only improves soil fertility and quality but also crop production, it causes soil pollution, soil hardness, organic matter mineralization, increased nitrous oxide emissions, and nitrate leaching into groundwater and surface waters [30]. Fertilizer application considerably affected the soil C/N ratio. When Liu et al. [30] analyzed chemical and organic fertilizers, they discovered that chemical fertilizer (NPK) treatment lowers soil pH, and when combined with organic fertilizer, it lowers the soil pH even more. Furthermore, the relative populations of microbiome components varied after organic waste (straw) treatment due to changes in ammonium nitrogen (NH4+-N) and nitrate nitrogen (NO3+-N).
Bhattacharyya et al. [26] reported that the influence of organic matter accessibility on the significance of SMC to soil C control can be explained in numerous ways:
Increased organic matter inputs may hasten decomposition and decrease C storage by reducing microbial C usage efficiency.
Greater organic matter additions, labile carbon inputs, or nutrient inputs result in increased SOM mineralization in soil, which is referred to as a positive priming effect.
Increased organic matter additions can boost C skimming by increasing the formation of microbial necromass over time.
The interrelationship between nutrients, roots, water, and SOM is another component that influences SOM to build up in more complex cropping systems. In the surface soil layer, available nutrients are dynamic; they may be reduced by net microbial immobilization during heavy litter intake times and abundant during times of net mineralization. Microorganisms regulate root proliferation through their effects on nutrient availability and water, while roots influence microbial activity through their effects on nutrient availability. Increased litter inputs encourage competition for nutrients between microorganisms. When litter and organic matter pool sizes increase over longer periods, mechanisms favoring C sequestration are reinforced such as improved plant water availability, stronger nutrient recycling capacity, and reduction of nutrient leakage. Since microbial and plant respiratory processes are dominated by nutrient availability, cover crops that increase CO2 and N2O fluxes would have a good impact on soil respiration.
The pH of the soil influences microbial activity. As a result, soil management activities such as liming have an impact on soil emissions as additional carbonate can be emitted as CO2. Soil emissions are reduced when the soil is acidic. The ideal pH for methanogenesis (CH4 generation) is found between pH 4 and 7. CO2 emissions are at their highest when the pH levels are neutral. Under acidic soil conditions, N2O emissions are reduced. Because the balance between NH3 and NO3 flips to ammonia at higher pH values, nitrification rises. However, there was no evidence of a link between NO and N2O emissions and pH. Denitrification produces NO emissions under acidic soil conditions, whereas nitrification produces NO emissions under alkaline soil conditions.
Crop rotation (CR) changes soil microbial profiles toward microorganisms with C-sequestering characteristics. According to Venter et al. [31], microbial diversity and richness can be increased by 15 and 3.4%, respectively, using CR. Different crop rotation practices may cause variations in soil C storage and SMC use. After a long-term CR practice involving legumes, SOC stock, MBC, and soil enzymatic activity (acid/alkaline phosphatase, beta-glucosidase, and arylsulfatase) may rise. The presence of legumes in CR may help to protect the SMC in general.
If left undisturbed, soil carbon may remain sequestered for thousands of years [32]. Disturbed soils, which are primarily due to intensive cultivation, have decreased the soil’s ability to maintain and store carbon, amplifying the impacts of climate change and the accompanying costs to mitigate them [33]. While soil ability as a carbon sequester varies with location, climate, and soil type, one common cause of carbon loss, the majority of which is emitted as carbon dioxide is due to unsustainable management practices at the macroscopical level. Further approaches to sustainable management practices should consider and employ our current knowledge at the microscopical or cellular level. Acknowledgment and immediate actions from all relevant stakeholders must be engaged in the race against time to mitigate the climate change while ensuring the benefits for the environment, community, and economy.
Among the easiest options to avoid or reduce soil carbon loss are sustainable soil management practices at the ground level where the results of carbon sequestration can be detected within several years of implementation [34]. Enhanced food security and nutrition as well as improved ecosystem services are some of the possible benefits to be gained over the short to medium term (Figure 3).
Benefits of sustainable soil management practices.
Sustainable soil management practices involve the increase of SOM to offset the effects of land conversion, tillage disturbance, soil erosion, and leaching from human activities [35]. The conundrum in sustainable soil management practices is that determining the best practices does not only depend on the dynamic properties of the soil, but also relies on various environmental conditions and social and economic factors. Nevertheless, several studies agreed that sustainable soil management practices should include the following:
Adoption of no-till or conservation tillage to preserve soil structure [36];
Use of cover crops to increase SOM, water holding capacity, and protection from wind and water erosion [37];
Organic soil amendment from plant residues, compost, and biochars to lower C:N ratio [38]; and
Better irrigation to manage soil salinity [39].
Following these strategies, the measurement of soil CO2 flux can be used to determine whether the ecosystem is functioning as a net carbon sink [40]. This is important since there are reports that the application of organic manures and residues could increase CO2 emission, which negates the goals of mitigating climate change [41]. Verifying the most appropriate sustainable soil management practices is deemed of the utmost importance to ensure successful soil-specific microbial carbon sequestration.
Modern climate change mitigation techniques have included the use of biotechnology and engineering technologies at the cellular level in recent years. Microorganisms, both autotrophic and heterotrophic, can be genetically modified to boost their CO2 sequestration ability, notably by increasing microbial CO2 fixing and decreasing CO2 release. Due to the presence of a complete CO2-fixing pathway and the ability to transfer energy from sunlight and inorganic compounds into cellular metabolites, autotrophic bacteria have evolved to subsist only on CO2. Heterotrophic microbes, on the other hand, rely on organic substances to thrive [42]. Therefore, the autotrophs could be engineered to improve the efficiency of their CO2-fixing pathway, energy-harvesting systems and to regulate their cell resources, whereas the heterotrophs could be engineered to improve their carboxylation reactions in the metabolic pathways, to establish non-native CO2-fixing bypass and ultimately to engineer them into autotrophs (Table 1).
Microorganisms | Targets | Strategies | References |
---|---|---|---|
Autotrophs | Improve the efficiency of the CO2-fixing pathway | (1) Regulate the expression of CO2-fixing pathway enzymes; (2) Improve the catalytic properties of carboxylases; (3) Create synthetic CO2-fixing pathways. | [43, 44] |
Developing and optimizing energy harvesting systems | (1) Optimize natural photosystems; (2) Create artificial photosystems; (3) Develop electricity utilizing systems. | [45, 46] | |
Regulating cell resources | (1) Enhance the product synthesis pathway; (2) Engineer transcription factors; (3) Provide organic carbon resources. | [47, 48] | |
Heterotrophs | Improve carboxylation reactions in metabolic pathways | (1) Augment the activity of carboxylases; (2) Increase intracellular CO2 availability. | [49, 50] |
Establish non-native CO2-fixing bypass | (1) Establish autotrophs transferred non-native CO2-fixing bypass; (2) Create artificial pathways. | [44, 51] | |
Engineer heterotrophs into autotrophs | (1) Install complete CO2-fixing pathways; (2) Equip energy harvesting systems. | [46, 52] |
Selected strategies to improve microbial CO2 sequestration.
Modifications of both autotrophic and heterotrophic microorganisms to increase their efficiency in CO2 sequestration
Soil microbiome activity has a huge implication on soil ecosystem dynamics, generally by promoting soil fertility and plant productivity. Soil is also a storage for carbon bulk either as SOM or SOC in terrestrial ecosystems. Carbon storage is the result of symbiotic interactions between plants and microbes in soils, through dynamic ecological processes of photosynthesis, decomposition, and soil respiration. The interaction and carbon sequestration are complicated to be measured precisely. Nonetheless, various research in recent years has clarified that human activities and climate change have had a significant impact on the soil’s ecosystem, thus necessitating effective carbon balancing measures. As the shift toward sustainable agriculture is strengthening, the carbon footprint is one point of interest to benchmark the level of sustainability in agriculture activities. Moving forward, many techniques for carbon balancing and mitigation in soils and plant dynamic systems can be used, both at the macroscopical and microscopical levels of soil management.
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A new type of memristors with a floating photogate based on biocompatible graphene and other 2D crystals with extremely low power consumption and footprint is considered. The photocatalytic oxidation of graphene is proposed as an effective method of creating synapse-like 2D memristive devices with photoresistive switching for nonvolatile electronic memory of ultrahigh density. Particular attention is paid to the new concept of the formation of self-assembled nanoscale memristive elements interfacing artificial electronic neural networks. 2D photomemristors with a floating photogate exhibit multiple states controlled in a wide range of electromagnetic radiation and can be used for neuromorphic computations, pattern recognition and image processing needed to create artificial intelligence.",book:{id:"7334",slug:"advances-in-memristor-neural-networks-modeling-and-applications",title:"Advances in Memristor Neural Networks",fullTitle:"Advances in Memristor Neural Networks - Modeling and Applications"},signatures:"Gennady N. Panin and Olesya O. 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This chapter will discuss the state-of-the-art research trend on neuromorphic computing with memristors as electronic synapses. Furthermore, a novel three-dimensional (3D) neuromorphic computing architecture combining memristor and monolithic 3D integration technology would be introduced; such computing architecture has capabilities to reduce the system power consumption, provide high connectivity, resolve the routing congestion issues, and offer the massively parallel data processing. Moreover, the design methodology of applying the capacitance formed by the through-silicon vias (TSVs) to generate a membrane potential in 3D neuromorphic computing system would be discussed in this chapter.",book:{id:"7334",slug:"advances-in-memristor-neural-networks-modeling-and-applications",title:"Advances in Memristor Neural Networks",fullTitle:"Advances in Memristor Neural Networks - Modeling and Applications"},signatures:"Hongyu An, Kangjun Bai and Yang Yi",authors:[{id:"245542",title:"Mr.",name:"Kangjun",middleName:null,surname:"Bai",slug:"kangjun-bai",fullName:"Kangjun Bai"},{id:"246324",title:"Ph.D.",name:"Hongyu",middleName:null,surname:"An",slug:"hongyu-an",fullName:"Hongyu An"},{id:"246727",title:"Prof.",name:"Yang",middleName:"Cindy",surname:"Yi",slug:"yang-yi",fullName:"Yang Yi"}]},{id:"32035",title:"Thermography Applications in the Study of Buildings Hygrothermal Behaviour",slug:"thermography-applications-in-the-study-of-buildings-hygrothermal-behaviour",totalDownloads:3480,totalCrossrefCites:10,totalDimensionsCites:17,abstract:null,book:{id:"842",slug:"infrared-thermography",title:"Infrared Thermography",fullTitle:"Infrared Thermography"},signatures:"E. 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As an initial model equation, an integrodifferential equation of Voltaire type was introduced, which was reduced by means of a special choice of difference kernels to a differential equation with nonlocal derivatives of fractional-order variables. An explicit finite-difference scheme is proposed, and questions of its stability and convergence are investigated. A computer study of the proposed numerical algorithm on various test examples of the hereditary oscillators Airy, Duffing, and others was carried out. Oscillograms and phase trajectories are plotted and constructed.",book:{id:"7413",slug:"oscillators-recent-developments",title:"Oscillators",fullTitle:"Oscillators - Recent Developments"},signatures:"Roman Ivanovich Parovik",authors:null}],onlineFirstChaptersFilter:{topicId:"747",limit:6,offset:0},onlineFirstChaptersCollection:[],onlineFirstChaptersTotal:0},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:108,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:141,numberOfOpenTopics:2,numberOfUpcomingTopics:0,issn:"2631-6218",doi:"10.5772/intechopen.71199",isOpenForSubmission:!0},{id:"6",title:"Infectious Diseases",numberOfPublishedBooks:13,numberOfPublishedChapters:123,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:22,numberOfOpenTopics:3,numberOfUpcomingTopics:0,issn:"2753-894X",doi:"10.5772/intechopen.100359",isOpenForSubmission:!0},{id:"23",title:"Education and Human Development",numberOfPublishedBooks:0,numberOfPublishedChapters:11,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. 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He is a full professor of signal processing and pattern recognition and is head of the Signals and Communications Department at ULPGC, teaching from 2001 on subjects on signal processing and learning theory. His research lines are biometrics, biomedical signals and images, data mining, classification system, signal and image processing, machine learning, and environmental intelligence. He has researched in 52 international and Spanish research projects, some of them as head researcher. He is co-author of 4 books, co-editor of 27 proceedings books, guest editor for 8 JCR-ISI international journals, and up to 24 book chapters. He has over 450 papers published in international journals and conferences (81 of them indexed on JCR – ISI - Web of Science). He has published seven patents in the Spanish Patent and Trademark Office. He has been a supervisor on 8 Ph.D. theses (11 more are under supervision), and 130 master theses. He is the founder of The IEEE IWOBI conference series and the president of its Steering Committee, as well as the founder of both the InnoEducaTIC and APPIS conference series. He is an evaluator of project proposals for the European Union (H2020), Medical Research Council (MRC, UK), Spanish Government (ANECA, Spain), Research National Agency (ANR, France), DAAD (Germany), Argentinian Government, and the Colombian Institutions. He has been a reviewer in different indexed international journals (<70) and conferences (<250) since 2001. He has been a member of the IASTED Technical Committee on Image Processing from 2007 and a member of the IASTED Technical Committee on Artificial Intelligence and Expert Systems from 2011. \n\nHe has held the general chair position for the following: ACM-APPIS (2020, 2021), IEEE-IWOBI (2019, 2020 and 2020), A PPIS (2018, 2019), IEEE-IWOBI (2014, 2015, 2017, 2018), InnoEducaTIC (2014, 2017), IEEE-INES (2013), NoLISP (2011), JRBP (2012), and IEEE-ICCST (2005)\n\nHe is an associate editor of the Computational Intelligence and Neuroscience Journal (Hindawi – Q2 JCR-ISI). He was vice dean from 2004 to 2010 in the Higher Technical School of Telecommunication Engineers at ULPGC and the vice dean of Graduate and Postgraduate Studies from March 2013 to November 2017. He won the “Catedra Telefonica” Awards in Modality of Knowledge Transfer, 2017, 2018, and 2019 editions, and awards in Modality of COVID Research in 2020.\n\nPublic References:\nResearcher ID http://www.researcherid.com/rid/N-5967-2014\nORCID https://orcid.org/0000-0002-4621-2768 \nScopus Author ID https://www.scopus.com/authid/detail.uri?authorId=6602376272\nScholar Google https://scholar.google.es/citations?user=G1ks9nIAAAAJ&hl=en \nResearchGate https://www.researchgate.net/profile/Carlos_Travieso",institutionString:null,institution:{name:"University of Las Palmas de Gran Canaria",institutionURL:null,country:{name:"Spain"}}},editorTwo:null,editorThree:null},{id:"23",title:"Computational Neuroscience",coverUrl:"https://cdn.intechopen.com/series_topics/covers/23.jpg",isOpenForSubmission:!0,editor:{id:"14004",title:"Dr.",name:"Magnus",middleName:null,surname:"Johnsson",slug:"magnus-johnsson",fullName:"Magnus Johnsson",profilePictureURL:"https://mts.intechopen.com/storage/users/14004/images/system/14004.png",biography:"Dr Magnus Johnsson is a cross-disciplinary scientist, lecturer, scientific editor and AI/machine learning consultant from Sweden. \n\nHe is currently at Malmö University in Sweden, but also held positions at Lund University in Sweden and at Moscow Engineering Physics Institute. \nHe holds editorial positions at several international scientific journals and has served as a scientific editor for books and special journal issues. \nHis research interests are wide and include, but are not limited to, autonomous systems, computer modeling, artificial neural networks, artificial intelligence, cognitive neuroscience, cognitive robotics, cognitive architectures, cognitive aids and the philosophy of mind. \n\nDr. Johnsson has experience from working in the industry and he has a keen interest in the application of neural networks and artificial intelligence to fields like industry, finance, and medicine. \n\nWeb page: www.magnusjohnsson.se",institutionString:null,institution:{name:"Malmö University",institutionURL:null,country:{name:"Sweden"}}},editorTwo:null,editorThree:null},{id:"24",title:"Computer Vision",coverUrl:"https://cdn.intechopen.com/series_topics/covers/24.jpg",isOpenForSubmission:!0,editor:{id:"294154",title:"Prof.",name:"George",middleName:null,surname:"Papakostas",slug:"george-papakostas",fullName:"George Papakostas",profilePictureURL:"https://s3.us-east-1.amazonaws.com/intech-files/0030O00002hYaGbQAK/Profile_Picture_1624519712088",biography:"George A. Papakostas has received a diploma in Electrical and Computer Engineering in 1999 and the M.Sc. and Ph.D. degrees in Electrical and Computer Engineering in 2002 and 2007, respectively, from the Democritus University of Thrace (DUTH), Greece. Dr. Papakostas serves as a Tenured Full Professor at the Department of Computer Science, International Hellenic University, Greece. Dr. Papakostas has 10 years of experience in large-scale systems design as a senior software engineer and technical manager, and 20 years of research experience in the field of Artificial Intelligence. Currently, he is the Head of the “Visual Computing” division of HUman-MAchines INteraction Laboratory (HUMAIN-Lab) and the Director of the MPhil program “Advanced Technologies in Informatics and Computers” hosted by the Department of Computer Science, International Hellenic University. He has (co)authored more than 150 publications in indexed journals, international conferences and book chapters, 1 book (in Greek), 3 edited books, and 5 journal special issues. His publications have more than 2100 citations with h-index 27 (GoogleScholar). His research interests include computer/machine vision, machine learning, pattern recognition, computational intelligence. \nDr. Papakostas served as a reviewer in numerous journals, as a program\ncommittee member in international conferences and he is a member of the IAENG, MIR Labs, EUCogIII, INSTICC and the Technical Chamber of Greece (TEE).",institutionString:null,institution:{name:"International Hellenic University",institutionURL:null,country:{name:"Greece"}}},editorTwo:null,editorThree:null},{id:"25",title:"Evolutionary Computation",coverUrl:"https://cdn.intechopen.com/series_topics/covers/25.jpg",isOpenForSubmission:!0,editor:{id:"136112",title:"Dr.",name:"Sebastian",middleName:null,surname:"Ventura Soto",slug:"sebastian-ventura-soto",fullName:"Sebastian Ventura Soto",profilePictureURL:"https://mts.intechopen.com/storage/users/136112/images/system/136112.png",biography:"Sebastian Ventura is a Spanish researcher, a full professor with the Department of Computer Science and Numerical Analysis, University of Córdoba. 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In the last five years, he has published more than 60 papers in international journals indexed in the JCR (around 70% of them belonging to first quartile journals) and he has edited some Springer books “Supervised Descriptive Pattern Mining” (2018), “Multiple Instance Learning - Foundations and Algorithms” (2016), and “Pattern Mining with Evolutionary Algorithms” (2016). He has also been involved in more than 20 research projects supported by the Spanish and Andalusian governments and the European Union. He currently belongs to the editorial board of PeerJ Computer Science, Information Fusion and Engineering Applications of Artificial Intelligence journals, being also associate editor of Applied Computational Intelligence and Soft Computing and IEEE Transactions on Cybernetics. Finally, he is editor-in-chief of Progress in Artificial Intelligence. He is a Senior Member of the IEEE Computer, the IEEE Computational Intelligence, and the IEEE Systems, Man, and Cybernetics Societies, and the Association of Computing Machinery (ACM). Finally, his main research interests include data science, computational intelligence, and their applications.",institutionString:null,institution:{name:"University of Córdoba",institutionURL:null,country:{name:"Spain"}}},editorTwo:null,editorThree:null},{id:"26",title:"Machine Learning and Data Mining",coverUrl:"https://cdn.intechopen.com/series_topics/covers/26.jpg",isOpenForSubmission:!0,editor:{id:"24555",title:"Dr.",name:"Marco Antonio",middleName:null,surname:"Aceves Fernandez",slug:"marco-antonio-aceves-fernandez",fullName:"Marco Antonio Aceves Fernandez",profilePictureURL:"https://mts.intechopen.com/storage/users/24555/images/system/24555.jpg",biography:"Dr. Marco Antonio Aceves Fernandez obtained his B.Sc. (Eng.) in Telematics from the Universidad de Colima, Mexico. 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Currently, he is a professor of Orthodontics. He holds a Certificate of Advanced Study type A in Technology of Biomaterials used in Dentistry (1995); Certificate of Advanced Study type B in Dento-Facial Orthopaedics (1997) from the Faculty of Dental Surgery, University Denis Diderot-Paris VII, France; Diploma of Advanced Study (DESA) in Biocompatibility of Biomaterials from the Faculty of Medicine and Pharmacy of Casablanca (2002); Certificate of Clinical Occlusodontics from the Faculty of Dentistry of Casablanca (2004); University Diploma of Biostatistics and Perceptual Health Measurement from the Faculty of Medicine and Pharmacy of Casablanca (2011); and a University Diploma of Pedagogy of Odontological Sciences from the Faculty of Dentistry of Casablanca (2013). He is the author of several scientific articles, book chapters, and books.",institutionString:"University of Hassan II Casablanca",position:null,outsideEditionCount:0,totalCites:0,totalAuthoredChapters:"7",totalChapterViews:"0",totalEditedBooks:"2",institution:{name:"University of Hassan II Casablanca",institutionURL:null,country:{name:"Morocco"}}},equalEditorTwo:null,equalEditorThree:null},{type:"book",id:"7060",title:"Gingival Disease",subtitle:"A Professional Approach for Treatment and Prevention",coverURL:"https://cdn.intechopen.com/books/images_new/7060.jpg",slug:"gingival-disease-a-professional-approach-for-treatment-and-prevention",publishedDate:"October 23rd 2019",editedByType:"Edited by",bookSignature:"Alaa Eddin Omar Al Ostwani",hash:"b81d39988cba3a3cf746c1616912cf41",volumeInSeries:4,fullTitle:"Gingival Disease - A Professional Approach for Treatment and Prevention",editors:[{id:"240870",title:"Ph.D.",name:"Alaa Eddin Omar",middleName:null,surname:"Al Ostwani",slug:"alaa-eddin-omar-al-ostwani",fullName:"Alaa Eddin Omar Al Ostwani",profilePictureURL:"https://mts.intechopen.com/storage/users/240870/images/system/240870.jpeg",institutionString:"International University for Science and Technology.",institution:{name:"Islamic University of Science and Technology",institutionURL:null,country:{name:"India"}}}],equalEditorOne:null,equalEditorTwo:null,equalEditorThree:null},{type:"book",id:"7572",title:"Trauma in Dentistry",subtitle:null,coverURL:"https://cdn.intechopen.com/books/images_new/7572.jpg",slug:"trauma-in-dentistry",publishedDate:"July 3rd 2019",editedByType:"Edited by",bookSignature:"Serdar Gözler",hash:"7cb94732cfb315f8d1e70ebf500eb8a9",volumeInSeries:3,fullTitle:"Trauma in Dentistry",editors:[{id:"204606",title:"Dr.",name:"Serdar",middleName:null,surname:"Gözler",slug:"serdar-gozler",fullName:"Serdar Gözler",profilePictureURL:"https://mts.intechopen.com/storage/users/204606/images/system/204606.jpeg",institutionString:"Istanbul Aydin University",institution:{name:"Istanbul Aydın University",institutionURL:null,country:{name:"Turkey"}}}],equalEditorOne:null,equalEditorTwo:null,equalEditorThree:null},{type:"book",id:"7139",title:"Current Approaches in Orthodontics",subtitle:null,coverURL:"https://cdn.intechopen.com/books/images_new/7139.jpg",slug:"current-approaches-in-orthodontics",publishedDate:"April 10th 2019",editedByType:"Edited by",bookSignature:"Belma Işık Aslan and Fatma Deniz Uzuner",hash:"2c77384eeb748cf05a898d65b9dcb48a",volumeInSeries:2,fullTitle:"Current Approaches in Orthodontics",editors:[{id:"42847",title:"Dr.",name:"Belma",middleName:null,surname:"Işik Aslan",slug:"belma-isik-aslan",fullName:"Belma Işik Aslan",profilePictureURL:"https://mts.intechopen.com/storage/users/42847/images/system/42847.jpg",institutionString:"Gazi University Dentistry Faculty Department of Orthodontics",institution:null}],equalEditorOne:null,equalEditorTwo:null,equalEditorThree:null},{type:"book",id:"6668",title:"Dental Caries",subtitle:"Diagnosis, Prevention and Management",coverURL:"https://cdn.intechopen.com/books/images_new/6668.jpg",slug:"dental-caries-diagnosis-prevention-and-management",publishedDate:"September 19th 2018",editedByType:"Edited by",bookSignature:"Zühre Akarslan",hash:"b0f7667770a391f772726c3013c1b9ba",volumeInSeries:1,fullTitle:"Dental Caries - Diagnosis, Prevention and Management",editors:[{id:"171887",title:"Prof.",name:"Zühre",middleName:null,surname:"Akarslan",slug:"zuhre-akarslan",fullName:"Zühre Akarslan",profilePictureURL:"https://mts.intechopen.com/storage/users/171887/images/system/171887.jpg",institutionString:"Gazi University",institution:{name:"Gazi University",institutionURL:null,country:{name:"Turkey"}}}],equalEditorOne:null,equalEditorTwo:null,equalEditorThree:null}]},subseriesFiltersForPublishedBooks:[{group:"subseries",caption:"Prosthodontics and Implant Dentistry",value:2,count:3},{group:"subseries",caption:"Oral Health",value:1,count:6}],publicationYearFilters:[{group:"publicationYear",caption:"2022",value:2022,count:3},{group:"publicationYear",caption:"2020",value:2020,count:2},{group:"publicationYear",caption:"2019",value:2019,count:3},{group:"publicationYear",caption:"2018",value:2018,count:1}],authors:{paginationCount:229,paginationItems:[{id:"318170",title:"Dr.",name:"Aneesa",middleName:null,surname:"Moolla",slug:"aneesa-moolla",fullName:"Aneesa Moolla",position:null,profilePictureURL:"https://mts.intechopen.com/storage/users/318170/images/system/318170.png",biography:"Dr. Aneesa Moolla has extensive experience in the diverse fields of health care having previously worked in dental private practice, at the Red Cross Flying Doctors association, and in healthcare corporate settings. She is now a lecturer at the University of Witwatersrand, South Africa, and a principal researcher at the Health Economics and Epidemiology Research Office (HE2RO), South Africa. Dr. Moolla holds a Ph.D. in Psychology with her research being focused on mental health and resilience. In her professional work capacity, her research has further expanded into the fields of early childhood development, mental health, the HIV and TB care cascades, as well as COVID. She is also a UNESCO-trained International Bioethics Facilitator.",institutionString:"University of the Witwatersrand",institution:{name:"University of the Witwatersrand",country:{name:"South Africa"}}},{id:"419588",title:"Ph.D.",name:"Sergio",middleName:"Alexandre",surname:"Gehrke",slug:"sergio-gehrke",fullName:"Sergio Gehrke",position:null,profilePictureURL:"https://s3.us-east-1.amazonaws.com/intech-files/0033Y000038WgMKQA0/Profile_Picture_2022-06-02T11:44:20.jpg",biography:"Dr. Sergio Alexandre Gehrke is a doctorate holder in two fields. The first is a Ph.D. in Cellular and Molecular Biology from the Pontificia Catholic University, Porto Alegre, Brazil, in 2010 and the other is an International Ph.D. in Bioengineering from the Universidad Miguel Hernandez, Elche/Alicante, Spain, obtained in 2020. In 2018, he completed a postdoctoral fellowship in Materials Engineering in the NUCLEMAT of the Pontificia Catholic University, Porto Alegre, Brazil. He is currently the Director of the Postgraduate Program in Implantology of the Bioface/UCAM/PgO (Montevideo, Uruguay), Director of the Cathedra of Biotechnology of the Catholic University of Murcia (Murcia, Spain), an Extraordinary Full Professor of the Catholic University of Murcia (Murcia, Spain) as well as the Director of the private center of research Biotecnos – Technology and Science (Montevideo, Uruguay). Applied biomaterials, cellular and molecular biology, and dental implants are among his research interests. He has published several original papers in renowned journals. In addition, he is also a Collaborating Professor in several Postgraduate programs at different universities all over the world.",institutionString:null,institution:{name:"Universidad Católica San Antonio de Murcia",country:{name:"Spain"}}},{id:"342152",title:"Dr.",name:"Santo",middleName:null,surname:"Grace Umesh",slug:"santo-grace-umesh",fullName:"Santo Grace Umesh",position:null,profilePictureURL:"https://mts.intechopen.com/storage/users/342152/images/16311_n.jpg",biography:null,institutionString:null,institution:{name:"SRM Dental College",country:{name:"India"}}},{id:"333647",title:"Dr.",name:"Shreya",middleName:null,surname:"Kishore",slug:"shreya-kishore",fullName:"Shreya Kishore",position:null,profilePictureURL:"https://mts.intechopen.com/storage/users/333647/images/14701_n.jpg",biography:"Dr. Shreya Kishore completed her Bachelor in Dental Surgery in Chettinad Dental College and Research Institute, Chennai, and her Master of Dental Surgery (Orthodontics) in Saveetha Dental College, Chennai. She is also Invisalign certified. She’s working as a Senior Lecturer in the Department of Orthodontics, SRM Dental College since November 2019. She is actively involved in teaching orthodontics to the undergraduates and the postgraduates. Her clinical research topics include new orthodontic brackets, fixed appliances and TADs. She’s published 4 articles in well renowned indexed journals and has a published patency of her own. Her private practice is currently limited to orthodontics and works as a consultant in various clinics.",institutionString:null,institution:{name:"SRM Dental College",country:{name:"India"}}},{id:"323731",title:"Prof.",name:"Deepak M.",middleName:"Macchindra",surname:"Vikhe",slug:"deepak-m.-vikhe",fullName:"Deepak M. Vikhe",position:null,profilePictureURL:"https://mts.intechopen.com/storage/users/323731/images/13613_n.jpg",biography:"Dr Deepak M.Vikhe .\n\n\t\n\tDr Deepak M.Vikhe , completed his Masters & PhD in Prosthodontics from Rural Dental College, Loni securing third rank in the Pravara Institute of Medical Sciences Deemed University. He was awarded Dr.G.C.DAS Memorial Award for Research on Implants at 39th IPS conference Dubai (U A E).He has two patents under his name. He has received Dr.Saraswati medal award for best research for implant study in 2017.He has received Fully funded scholarship to Spain ,university of Santiago de Compostela. He has completed fellowship in Implantlogy from Noble Biocare. \nHe has attended various conferences and CDE programmes and has national publications to his credit. His field of interest is in Implant supported prosthesis. Presently he is working as a associate professor in the Dept of Prosthodontics, Rural Dental College, Loni and maintains a successful private practice specialising in Implantology at Rahata.\n\nEmail: drdeepak_mvikhe@yahoo.com..................",institutionString:null,institution:{name:"Pravara Institute of Medical Sciences",country:{name:"India"}}},{id:"204110",title:"Dr.",name:"Ahmed A.",middleName:null,surname:"Madfa",slug:"ahmed-a.-madfa",fullName:"Ahmed A. Madfa",position:null,profilePictureURL:"https://mts.intechopen.com/storage/users/204110/images/system/204110.jpg",biography:"Dr. Madfa is currently Associate Professor of Endodontics at Thamar University and a visiting lecturer at Sana'a University and University of Sciences and Technology. He has more than 6 years of experience in teaching. His research interests include root canal morphology, functionally graded concept, dental biomaterials, epidemiology and dental education, biomimetic restoration, finite element analysis and endodontic regeneration. Dr. Madfa has numerous international publications, full articles, two patents, a book and a book chapter. Furthermore, he won 14 international scientific awards. Furthermore, he is involved in many academic activities ranging from editorial board member, reviewer for many international journals and postgraduate students' supervisor. Besides, I deliver many courses and training workshops at various scientific events. Dr. Madfa also regularly attends international conferences and holds administrative positions (Deputy Dean of the Faculty for Students’ & Academic Affairs and Deputy Head of Research Unit).",institutionString:"Thamar University",institution:null},{id:"210472",title:"Dr.",name:"Nermin",middleName:"Mohammed Ahmed",surname:"Yussif",slug:"nermin-yussif",fullName:"Nermin Yussif",position:null,profilePictureURL:"https://mts.intechopen.com/storage/users/210472/images/system/210472.jpg",biography:"Dr. Nermin Mohammed Ahmed Yussif is working at the Faculty of dentistry, University for October university for modern sciences and arts (MSA). Her areas of expertise include: periodontology, dental laserology, oral implantology, periodontal plastic surgeries, oral mesotherapy, nutrition, dental pharmacology. She is an editor and reviewer in numerous international journals.",institutionString:"MSA University",institution:null},{id:"204606",title:"Dr.",name:"Serdar",middleName:null,surname:"Gözler",slug:"serdar-gozler",fullName:"Serdar Gözler",position:null,profilePictureURL:"https://mts.intechopen.com/storage/users/204606/images/system/204606.jpeg",biography:"Dr. Serdar Gözler has completed his undergraduate studies at the Marmara University Faculty of Dentistry in 1978, followed by an assistantship in the Prosthesis Department of Dicle University Faculty of Dentistry. Starting his PhD work on non-resilient overdentures with Assoc. Prof. Hüsnü Yavuzyılmaz, he continued his studies with Prof. Dr. Gürbüz Öztürk of Istanbul University Faculty of Dentistry Department of Prosthodontics, this time on Gnatology. He attended training programs on occlusion, neurology, neurophysiology, EMG, radiology and biostatistics. In 1982, he presented his PhD thesis \\Gerber and Lauritzen Occlusion Analysis Techniques: Diagnosis Values,\\ at Istanbul University School of Dentistry, Department of Prosthodontics. As he was also working with Prof. Senih Çalıkkocaoğlu on The Physiology of Chewing at the same time, Gözler has written a chapter in Çalıkkocaoğlu\\'s book \\Complete Prostheses\\ entitled \\The Place of Neuromuscular Mechanism in Prosthetic Dentistry.\\ The book was published five times since by the Istanbul University Publications. Having presented in various conferences about occlusion analysis until 1998, Dr. Gözler has also decided to use the T-Scan II occlusion analysis method. Having been personally trained by Dr. Robert Kerstein on this method, Dr. Gözler has been lecturing on the T-Scan Occlusion Analysis Method in conferences both in Turkey and abroad. Dr. Gözler has various articles and presentations on Digital Occlusion Analysis methods. He is now Head of the TMD Clinic at Prosthodontic Department of Faculty of Dentistry , Istanbul Aydın University , Turkey.",institutionString:"Istanbul Aydin University",institution:{name:"Istanbul Aydın University",country:{name:"Turkey"}}},{id:"256417",title:"Associate Prof.",name:"Sanaz",middleName:null,surname:"Sadry",slug:"sanaz-sadry",fullName:"Sanaz Sadry",position:null,profilePictureURL:"https://mts.intechopen.com/storage/users/256417/images/8106_n.jpg",biography:null,institutionString:null,institution:{name:"Istanbul Aydın University",country:{name:"Turkey"}}},{id:"240870",title:"Ph.D.",name:"Alaa Eddin Omar",middleName:null,surname:"Al Ostwani",slug:"alaa-eddin-omar-al-ostwani",fullName:"Alaa Eddin Omar Al Ostwani",position:null,profilePictureURL:"https://mts.intechopen.com/storage/users/240870/images/system/240870.jpeg",biography:"Dr. Al Ostwani Alaa Eddin Omar received his Master in dentistry from Damascus University in 2010, and his Ph.D. in Pediatric Dentistry from Damascus University in 2014. Dr. Al Ostwani is an assistant professor and faculty member at IUST University since 2014. \nDuring his academic experience, he has received several awards including the scientific research award from the Union of Arab Universities, the Syrian gold medal and the international gold medal for invention and creativity. Dr. Al Ostwani is a Member of the International Association of Dental Traumatology and the Syrian Society for Research and Preventive Dentistry since 2017. He is also a Member of the Reviewer Board of International Journal of Dental Medicine (IJDM), and the Indian Journal of Conservative and Endodontics since 2016.",institutionString:"International University for Science and Technology.",institution:{name:"Islamic University of Science and Technology",country:{name:"India"}}},{id:"42847",title:"Dr.",name:"Belma",middleName:null,surname:"Işik Aslan",slug:"belma-isik-aslan",fullName:"Belma Işik Aslan",position:null,profilePictureURL:"https://mts.intechopen.com/storage/users/42847/images/system/42847.jpg",biography:"Dr. Belma IşIk Aslan was born in 1976 in Ankara-TURKEY. After graduating from TED Ankara College in 1994, she attended to Gazi University, Faculty of Dentistry in Ankara. She completed her PhD in orthodontic education at Gazi University between 1999-2005. Dr. Işık Aslan stayed at the Providence Hospital Craniofacial Institude and Reconstructive Surgery in Michigan, USA for three months as an observer. She worked as a specialist doctor at Gazi University, Dentistry Faculty, Department of Orthodontics between 2005-2014. She was appointed as associate professor in January, 2014 and as professor in 2021. Dr. Işık Aslan still works as an instructor at the same faculty. She has published a total of 35 articles, 10 book chapters, 39 conference proceedings both internationally and nationally. Also she was the academic editor of the international book 'Current Advances in Orthodontics'. She is a member of the Turkish Orthodontic Society and Turkish Cleft Lip and Palate Society. She is married and has 2 children. Her knowledge of English is at an advanced level.",institutionString:"Gazi University Dentistry Faculty Department of Orthodontics",institution:null},{id:"202198",title:"Dr.",name:"Buket",middleName:null,surname:"Aybar",slug:"buket-aybar",fullName:"Buket Aybar",position:null,profilePictureURL:"https://mts.intechopen.com/storage/users/202198/images/6955_n.jpg",biography:"Buket Aybar, DDS, PhD, was born in 1971. She graduated from Istanbul University, Faculty of Dentistry, in 1992 and completed her PhD degree on Oral and Maxillofacial Surgery in Istanbul University in 1997.\r\nDr. Aybar is currently a full-time professor in Istanbul University, Faculty of Dentistry Department of Oral and Maxillofacial Surgery. She has teaching responsibilities in graduate and postgraduate programs. Her clinical practice includes mainly dentoalveolar surgery.\r\nHer topics of interest are biomaterials science and cell culture studies. She has many articles in international and national scientific journals and chapters in books; she also has participated in several scientific projects supported by Istanbul University Research fund.",institutionString:null,institution:{name:"Marmara University",country:{name:"Turkey"}}},{id:"178412",title:"Associate Prof.",name:"Guhan",middleName:null,surname:"Dergin",slug:"guhan-dergin",fullName:"Guhan Dergin",position:null,profilePictureURL:"https://mts.intechopen.com/storage/users/178412/images/6954_n.jpg",biography:"Assoc. Prof. Dr. Gühan Dergin was born in 1973 in Izmit. He graduated from Marmara University Faculty of Dentistry in 1999. He completed his specialty of OMFS surgery in Marmara University Faculty of Dentistry and obtained his PhD degree in 2006. In 2005, he was invited as a visiting doctor in the Oral and Maxillofacial Surgery Department of the University of North Carolina, USA, where he went on a scholarship. Dr. Dergin still continues his academic career as an associate professor in Marmara University Faculty of Dentistry. He has many articles in international and national scientific journals and chapters in books.",institutionString:null,institution:{name:"Marmara University",country:{name:"Turkey"}}},{id:"178414",title:"Prof.",name:"Yusuf",middleName:null,surname:"Emes",slug:"yusuf-emes",fullName:"Yusuf Emes",position:null,profilePictureURL:"https://mts.intechopen.com/storage/users/178414/images/6953_n.jpg",biography:"Born in Istanbul in 1974, Dr. Emes graduated from Istanbul University Faculty of Dentistry in 1997 and completed his PhD degree in Istanbul University faculty of Dentistry Department of Oral and Maxillofacial Surgery in 2005. He has papers published in international and national scientific journals, including research articles on implantology, oroantral fistulas, odontogenic cysts, and temporomandibular disorders. Dr. Emes is currently working as a full-time academic staff in Istanbul University faculty of Dentistry Department of Oral and Maxillofacial Surgery.",institutionString:null,institution:{name:"Istanbul University",country:{name:"Turkey"}}},{id:"192229",title:"Ph.D.",name:"Ana Luiza",middleName:null,surname:"De Carvalho Felippini",slug:"ana-luiza-de-carvalho-felippini",fullName:"Ana Luiza De Carvalho Felippini",position:null,profilePictureURL:"https://mts.intechopen.com/storage/users/192229/images/system/192229.jpg",biography:null,institutionString:"University of São Paulo",institution:{name:"University of Sao Paulo",country:{name:"Brazil"}}},{id:"256851",title:"Prof.",name:"Ayşe",middleName:null,surname:"Gülşen",slug:"ayse-gulsen",fullName:"Ayşe Gülşen",position:null,profilePictureURL:"https://mts.intechopen.com/storage/users/256851/images/9696_n.jpg",biography:"Dr. Ayşe Gülşen graduated in 1990 from Faculty of Dentistry, University of Ankara and did a postgraduate program at University of Gazi. \nShe worked as an observer and research assistant in Craniofacial Surgery Departments in New York, Providence Hospital in Michigan and Chang Gung Memorial Hospital in Taiwan. \nShe works as Craniofacial Orthodontist in Department of Aesthetic, Plastic and Reconstructive Surgery, Faculty of Medicine, University of Gazi, Ankara Turkey since 2004.",institutionString:"Orthodontist, Assoc Prof in the Department of Aesthetic, Plastic and Reconstructive Surgery, Faculty of Medicine, University of Gazi",institution:null},{id:"255366",title:"Prof.",name:"Tosun",middleName:null,surname:"Tosun",slug:"tosun-tosun",fullName:"Tosun Tosun",position:null,profilePictureURL:"https://mts.intechopen.com/storage/users/255366/images/7347_n.jpg",biography:"Graduated at the Faculty of Dentistry, University of Istanbul, Turkey in 1989;\nVisitor Assistant at the University of Padua, Italy and Branemark Osseointegration Center of Treviso, Italy between 1993-94;\nPhD thesis on oral implantology in University of Istanbul and was awarded the academic title “Dr.med.dent.”, 1997;\nHe was awarded the academic title “Doç.Dr.” (Associated Professor) in 2003;\nProficiency in Botulinum Toxin Applications, Reading-UK in 2009;\nMastership, RWTH Certificate in Laser Therapy in Dentistry, AALZ-Aachen University, Germany 2009-11;\nMaster of Science (MSc) in Laser Dentistry, University of Genoa, Italy 2013-14.\n\nDr.Tosun worked as Research Assistant in the Department of Oral Implantology, Faculty of Dentistry, University of Istanbul between 1990-2002. \nHe worked part-time as Consultant surgeon in Harvard Medical International Hospitals and John Hopkins Medicine, Istanbul between years 2007-09.\u2028He was contract Professor in the Department of Surgical and Diagnostic Sciences (DI.S.C.), Medical School, University of Genova, Italy between years 2011-16. \nSince 2015 he is visiting Professor at Medical School, University of Plovdiv, Bulgaria. \nCurrently he is Associated Prof.Dr. at the Dental School, Oral Surgery Dept., Istanbul Aydin University and since 2003 he works in his own private clinic in Istanbul, Turkey.\u2028\nDr.Tosun is reviewer in journal ‘Laser in Medical Sciences’, reviewer in journal ‘Folia Medica\\', a Fellow of the International Team for Implantology, Clinical Lecturer of DGZI German Association of Oral Implantology, Expert Lecturer of Laser&Health Academy, Country Representative of World Federation for Laser Dentistry, member of European Federation of Periodontology, member of Academy of Laser Dentistry. Dr.Tosun presents papers in international and national congresses and has scientific publications in international and national journals. He speaks english, spanish, italian and french.",institutionString:null,institution:{name:"Istanbul Aydın University",country:{name:"Turkey"}}},{id:"260116",title:"Dr.",name:"Mehmet",middleName:null,surname:"Yaltirik",slug:"mehmet-yaltirik",fullName:"Mehmet Yaltirik",position:null,profilePictureURL:"https://mts.intechopen.com/storage/users/260116/images/7413_n.jpg",biography:"Birth Date 25.09.1965\r\nBirth Place Adana- Turkey\r\nSex Male\r\nMarrial Status Bachelor\r\nDriving License Acquired\r\nMother Tongue Turkish\r\n\r\nAddress:\r\nWork:University of Istanbul,Faculty of Dentistry, Department of Oral Surgery and Oral Medicine 34093 Capa,Istanbul- TURKIYE",institutionString:null,institution:{name:"Istanbul University",country:{name:"Turkey"}}},{id:"171887",title:"Prof.",name:"Zühre",middleName:null,surname:"Akarslan",slug:"zuhre-akarslan",fullName:"Zühre Akarslan",position:null,profilePictureURL:"https://mts.intechopen.com/storage/users/171887/images/system/171887.jpg",biography:"Zühre Akarslan was born in 1977 in Cyprus. She graduated from Gazi University Faculty of Dentistry, Ankara, Turkey in 2000. \r\nLater she received her Ph.D. degree from the Oral Diagnosis and Radiology Department; which was recently renamed as Oral and Dentomaxillofacial Radiology, from the same university. \r\nShe is working as a full-time Associate Professor and is a lecturer and an academic researcher. \r\nHer expertise areas are dental caries, cancer, dental fear and anxiety, gag reflex in dentistry, oral medicine, and dentomaxillofacial radiology.",institutionString:"Gazi University",institution:{name:"Gazi University",country:{name:"Turkey"}}},{id:"272237",title:"Dr.",name:"Pinar",middleName:"Kiymet",surname:"Karataban",slug:"pinar-karataban",fullName:"Pinar Karataban",position:null,profilePictureURL:"https://mts.intechopen.com/storage/users/272237/images/8911_n.png",biography:"Assist.Prof.Dr.Pınar Kıymet Karataban, DDS PhD \n\nDr.Pınar Kıymet Karataban was born in Istanbul in 1975. 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Her main interests are paleodontology, ancient and contemporary dentistry, oral microbiology, cerebral palsy and special care dentistry. She has national and international publications, scientific reports and is a member of IAPO (International Association for Paleodontology), IADH (International Association of Disability and Oral Health) and EAPD (European Association of Pediatric Dentistry).",institutionString:null,institution:null},{id:"172009",title:"Dr.",name:"Fatma Deniz",middleName:null,surname:"Uzuner",slug:"fatma-deniz-uzuner",fullName:"Fatma Deniz Uzuner",position:null,profilePictureURL:"https://mts.intechopen.com/storage/users/172009/images/7122_n.jpg",biography:"Dr. Deniz Uzuner was born in 1969 in Kocaeli-TURKEY. After graduating from TED Ankara College in 1986, she attended the Hacettepe University, Faculty of Dentistry in Ankara. \nIn 1993 she attended the Gazi University, Faculty of Dentistry, Department of Orthodontics for her PhD education. After finishing the PhD education, she worked as orthodontist in Ankara Dental Hospital under the Turkish Government, Ministry of Health and in a special Orthodontic Clinic till 2011. Between 2011 and 2016, Dr. Deniz Uzuner worked as a specialist in the Department of Orthodontics, Faculty of Dentistry, Gazi University in Ankara/Turkey. In 2016, she was appointed associate professor. Dr. Deniz Uzuner has authored 23 Journal Papers, 3 Book Chapters and has had 39 oral/poster presentations. She is a member of the Turkish Orthodontic Society. 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Recently, bioinspired systems have been successfully employing biomechanics to develop and improve assistive technology and rehabilitation devices. The research topic "Bioinspired Technology and Biomechanics" welcomes studies reporting recent advances in bioinspired technologies that contribute to individuals\' health, inclusion, and rehabilitation. 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Chapters exploring biomaterial approaches such as polymer synthesis and characterization, drug and gene vector design, biocompatibility, immunology and toxicology, and self-assembly at the nanoscale, are welcome. 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