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    1. Naturvetenskap och teknik
    2. Teknik och industri
    3. Maskinteknik och material

    Smart Materials for Science and Engineering

    AvUpendra Kumar,Piyush Kumar Sonkar

    Inbunden, Engelska, 2024

    2 073 kr

    Beställningsvara. Skickas inom 5-8 vardagar. Fri frakt över 249 kr.

    Beskrivning

    SMART MATERIALS FOR SCIENCE AND ENGINEERING Smart materials, also known as advanced or creative materials, are described as advanced materials that react intuitively to environmental changes or as materials that can return to their original shape in response to certain stimuli. Smart materials are classified as either active or passive based on their characteristics. There are two types of active materials. The first kind cannot change its characteristics when subjected to outside stimuli, for example photochromatic spectacles that only alter their color when exposed to sunlight. The other, which includes piezoelectric materials, can change one sort of energy (thermal, electrical, chemical, mechanical, or optical) into another. When subjected to external pressure, it can generate an electric charge. As an example, optical fibers can transmit electromagnetic waves. In contrast, passive smart materials can transmit a specific sort of energy. They have some amazing qualities that set them apart from other materials, such as transiency, meaning they can react to different kinds of external stimuli immediately, self-actuation or the capacity to change their appearance and shape, selectivity where the response is divided and expected, directness when the response is limited to the activating event, shape-changing where the material can change its shape to external stimuli, their ability to determine their own health, also known as self-diagnosis, and their ability to self-heal. The ability to synthesize novel materials has substantially progressed thanks to science and technology over the past 20 years. They fall mostly into the following four categories: polymers, ceramics, metals, and smart materials. Among these, smart materials are gaining popularity since they have more uses than conventional materials. Smart materials are unusual substances that have the ability to alter their properties, such as those that can immediately change their phase when placed near a magnet or their shape simply by applying heat. Humanity will be significantly impacted by this new era of smart materials. For instance, some of them can adapt their properties to the environment, some have sensory capabilities, some can repair themselves automatically, and some can degrade themselves. These extraordinary properties of smart materials will have an effect on all facets of civilization. There are many different types of intelligent materials, including magnetorheological materials, electro-rheostat materials, shape memory alloys, piezoelectric materials, and more. This book describes many forms of smart materials and their possible uses in various fields. A literature survey discusses the different types of smart materials, such as based ceramics, polymers, and organic compounds and their needs, advantages, disadvantages, and applications will be comprehensively discussed. A discussion of well-established smart materials including piezoelectric, magnetostrictive, shape memory alloy, electro-rheological fluid, and magnetorheological fluid materials will be discussed with their present prospects.

    Produktinformation

    • Utgivningsdatum:2024-05-21
    • Vikt:1 134 g
    • Format:Inbunden
    • Språk:Engelska
    • Antal sidor:400
    • Förlag:John Wiley & Sons Inc
    • ISBN:9781394185818

    Utforska kategorier

    • Maskinteknik och material inom Naturvetenskap och teknik

    Mer om författaren

    Upendra Kumar, PhD has been an assistant professor in the Department of Applied Science at the Indian Institute of Information Technology, Allahabad, Uttar Pradesh, India since 2021. His research has been published in prestigious international Science Citation Index physics and materials science publications and he has received numerous awards in the field. He has also made an impact by attending numerous scientific conferences, seminars, and workshops and serving on a number of national committees and professional bodies and associations. Piyush K. Sonkar, PhD is an assistant professor in the Department of Chemistry, Banaras Hindu University, Varanasi-India. His research interests include nanomaterials, nanocomposites, fuel cells, electrochemical devices, supercapacitors, bio-sensors, chemical sensors, and new materials. He has published more than 38 international and national research papers in various reputed journals.

    Innehållsförteckning

    • Preface xviiAcknowledgements xixScope of the Book xxi1 Introduction: Historical Overview, Current and Future Perspective 1Unni kisan, R.R. Awashthi and Sanjeev Kumar Trivedi1.1 Introduction 11.2 Historical Overview of Smart Material 41.3 About Smart Materials 61.4 Current and Future Perspectives of Smart Materials 112 Fabrication and Characterization Tools for Organic Semiconductors as Smart Materials in Optoelectronic Device Applications 17Minakshi Sharma, Chandra Mohan Singh Negi, Parvez Ahmed Alvi and Saral Kumar Gupta2.1 Introduction 182.2 Overview of Organic Semiconductors 182.3 Optoelectronic Properties of Conjugated Polymers 192.4 Optoelectronic Devices 192.5 Overview of Smart Materials 222.6 Methods and Techniques 252.7 Methodology 292.8 Characterization Techniques 302.9 Conclusion and Future Work 343 Smart Scaffold Constructs for Regenerative Medicine and Tissue Engineering 39Princy Choudhary, Ayushi Gupta, Saurabh Kumar Gupta, Shrey Dwivedi and Sangeeta Singh3.1 Introduction 393.2 Applications of Smart Scaffolds in Different Areas 433.3 Future Advancements and Techniques to Improve Efficiency of Scaffolds 603.4 Conclusion 634 Application of Smart Materials in Dental Sciences 75Ruqaiya Saleem, Amaresh Kumar Sahoo and Shalini Gupta4.1 Introduction 764.2 Clinical Applications of Smart Materials in Various Branches of Dentistry 774.3 Conclusion 855 Graphene-Related Smart Material (GRSM): Synthesis, Characterization, and Application in Optoelectronics Devices 89Varsha Yadav, Rahul Bhatnagar and Saral Kumar Gupta5.1 Introduction 895.2 Experimental Methods and Materials 945.3 Results and Discussion 965.4 Conclusions 1006 Synthesis and Characterization of Mechanical and Microstructural Properties of Fly-Ash-Reinforced Aluminum-Based Metal Matrix Composite 105Rahul Bhatnagar and Varsha Yadav6.1 Introduction 1056.2 Materials and Methods 1096.3 Results and Discussion 1126.4 Conclusion 1157 Organic Smart Materials: Synthesis, Characterization, and Application 121Shivaleela B. and S. M. Hanagodimath7.1 Introduction 1217.2 Organic Smart Materials 1227.3 Materials and Experimental Methods 1247.4 Synthesis of Organic Smart Materials 1257.5 Results and Discussion 1277.6 Applications 1317.7 Conclusions 1338 Magnetostrictive Material-Based Smart Materials, Synthesis, Properties, and Applications 135inki Singh and Sonam Perween8.1 Introduction 1368.2 Overview of Smart Materials Based on Magnetostrictive Materials 1378.3 Origin of Magnetostriction 1388.4 Synthesis of Magnetostrictive Materials 1408.5 Properties of Magnetostrictive Materials 1418.6 Methods of Magnetostrictive Property Measurement 1448.7 Application of the Magnetostrictive Smart Materials 1458.8 Conclusion 1489 Materials Development of Supercapacitors--Promising Device for Future Energy Storage Applications 151Ram Chhavi Sharma9.1 Introduction 1519.2 Principle of Operation of Conventional Capacitors and Supercapacitor 1549.3 Types of Supercapacitors 1559.4 Development of Advanced Materials for Supercapacitors 1609.5 Applications of Supercapacitors 1649.6 Conclusion 16610 Smart Solid Electrolyte Materials in Energy Storage Devices: Batteries 173Pawan Kumar, Shalu Rani and Sanjay Kumar10.1 Introduction 17310.2 Fundamental Aspects, Different Types of Electrolytes, and the Role of the Electrolyte in Battery Technology 17510.3 Conductivity Enhancement Approach in Solid Electrolyte Materials 18210.4 Synthesis Approaches for Solid Electrolytes 18410.5 Conclusion and Future Perspective 18611 Smart Materials in Energy Storage Devices: Solar Cells 191Indu Sharma, Neha Bisht, Parag R. Patil, Pravin S. Pawar, Rahul Kumar Yadav, Yong Tae Kim and Jaeyeong Heo11.1 Introduction 19111.2 Types of Solar Cells 19411.3 Future Trends and Possibilities for Tackling the Challenges in the Improvement of Smart Materials 20911.4 Summary 21212 Mixed-Dimensional 2D-3D Perovskite Solar Cells: Origin, Development, and Applications 221Vani Pawar, Bhumika Sharma and Sushobhan Avasthi12.1 Introduction 22212.2 Perovskite Solar Cells (PSCs) 22312.3 Low-Dimensional (2D or 2D-3D Mixed) Perovskites 22912.4 Ruddlesden-Popper (RP) Perovskites 23112.5 Dion-Jacobson (DJ) Perovskites 23912.6 Alternating Cation Interlayers 24412.7 Additive Engineering 24912.8 Compositional Engineering 25212.9 Functional Perovskite Photovoltaics 25412.10 Conclusion and Future Outlook 25913 Advanced Materials in Energy Conversion Devices: Fuel Cells and Biofuel Cells 269Amit Kumar Verma, Prerna Tripathi, Akhoury Sudhir Kumar Sinha and Shikha Singh13.1 Introduction 26913.2 Fuel Cell Types and Advancement in Electrode Materials 27313.3 Current Application Status 27913.4 Challenges 27913.5 Conclusion 28014 Smart Materials in Energy Storage Devices: Fuel Cells and Biofuel Cells 287Baliram Gurunath Rathod and Venkata Giridhar Poosarla14.1 Introduction 28714.2 Relation of Smart Materials and MFCs 28814.3 MFCs and Their Mechanism 28914.4 Classification of MFCs 29114.5 Microorganisms Involved in MFCs 29114.6 MFC Systems 29314.7 Design of MFCs 29414.8 Functions/Operations of MFCs 29614.9 Components of MFCs 29714.10 Energy from MFCs 29814.11 Recent Developments and Challenges in Smart Materials for Energy Storage Devices 29914.12 Future Perspectives 29914.13 Conclusion 30015 Role of Smart Materials in Environmental Remediation: CO2 Capture and CO2 Reduction 305Yogendra K. Gautam, Durvesh Gautam, Manohar Singh, Himani, Kavita Sharma, Beer Pal Singh and Anuj Kumar15.1 Introduction 30515.2 CO2 Reduction Techniques 30715.3 Conclusion 31816 Soft Perovskite Semiconductors for Future Optical Electronics 325Rashmi Yadav and Bhoopendra Yadav16.1 Introduction 32516.2 Perovskite Structure and Characteristics 32616.3 Composition Engineering Effects 32716.4 Interface Engineering Effects 32816.5 Bandgap Engineering Effects 32816.6 Stability and Degradation Mechanism in Perovskite Solar Cells (PSCs) 33016.7 Novel Applications 33216.8 Conclusion 33217 Band Gap Engineering and Nanopatterning of Muscovite Mica by Low-Energy Ion Beams Applicable for Futuristic Microelectronics 337Dipak Bhowmik, Joy Mukherjee and Prasanta Karmakar17.1 Introduction 33717.2 Experimental Details 33817.3 Nanopattern Formation on Mica Surface and Its Wettability Property by Low-Energy Ion 34017.4 Band Gap Engineering of Muscovite Mica by Low-Energy Ion Beam svia Few-Layer and Monolayer Modification 35017.5 Conclusion 356Acknowledgments 357References 357About the Editors 361Index 363