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    1. Naturvetenskap och teknik
    2. Matematik och naturvetenskap
    3. Kemi
    4. Fysikalisk kemi

    Additively Manufactured Electrochemical Sensors

    Design, Performance and Applications

    AvJ. G. Manjunatha,Chaudhery Mustansar Hussain

    Inbunden, Engelska, 2025

    2 391 kr

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

    Beskrivning

    This book is an essential guide to mastering 3D printed electrochemical sensors, offering a comprehensive roadmap from foundational principles and fabrication techniques to cutting-edge applications and real-world solutions. The rapid advancement of additive manufacturing technologies, commonly known as 3D printing, has revolutionized various fields of science and engineering. Among these, the development of electrochemical sensors has particularly benefited from additive manufacturing’s unique capabilities. This book provides an exhaustive exploration of 3D printed electrochemical sensors, from foundational principles to cutting-edge applications. By meticulously detailing design considerations, fabrication techniques, and performance evaluation metrics, it offers readers a roadmap to navigate the complexities of this interdisciplinary domain. Furthermore, with its emphasis on real-world applications and case studies, the book ensures that the knowledge imparted is not just theoretical but has practical relevance. This comprehensive guide empowers readers to harness the potential of 3D printing in the realm of electrochemical sensing, driving innovations and solutions for real-world challenges. Readers will find the book: Provides an in-depth exploration of the design principles and fabrication techniques specific to 3D printed electrochemical sensors;Features knowledge to innovate and develop customized sensors tailored to specific applications, ensuring improved sensitivity, selectivity, and longevity of the sensors;Offers insights into calibration, sensitivity assessment, durability considerations, and validation protocols, highlights challenges in performance assessment, and suggests strategies to overcome them;Explores practical applications of 3D printed electrochemical sensors across sectors like medical diagnostics, environmental monitoring, and food quality control.Audience Researchers, academics, and professionals in the fields of additive manufacturing, electrochemistry, and sensor design.

    Produktinformation

    • Utgivningsdatum:2025-09-05
    • Vikt:839 g
    • Format:Inbunden
    • Språk:Engelska
    • Antal sidor:448
    • Förlag:John Wiley & Sons Inc
    • ISBN:9781394303366

    Utforska kategorier

    • Fysikalisk kemi inom Naturvetenskap och teknik
    • Tillverkningsteknik inom Naturvetenskap och teknik

    Mer om författaren

    J. G. Manjunatha, PhD, is an Assistant Professor of Chemistry at Field Marshal K.M. Cariappa College. He has published 13 books and special journal issues, and over 160 research articles in reputed international journals. His research interests include electrochemistry, supercapacitors, and biosensors. Chaudhery Mustansar Hussain, PhD, is an adjunct professor and Director of Laboratories in the Department of Chemistry and Environmental Sciences at the New Jersey Institute of Technology. He is the author of numerous papers in peer-reviewed journals, as well as the author and editor of over 150 books. His research is focused on the applications of nanotechnology and advanced materials, environmental management, and analytical chemistry.

    Innehållsförteckning

    • Preface xv1 Evaluation of 3D-Printed Technology and Essential of Electrochemical Sensing 1Dhanyashree S. V., Ishwarya S., Rajendra Prasad S., Nagaswarupa H. P. and Ramachandra Naik1.1 Introduction 21.2 Types of 3D Printing Techniques for Electrochemical Sensors 41.3 Materials for 3D Printing Electrochemical Sensors 81.4 Case Studies 91.5 Future Challenges in 3D Printed Electrode 111.6 Conclusions 122 Materials, Design Principles, and Need for 3D-Printed Electrochemical Sensors for Monitoring Toxicity 21Mohan Kumar, M. Praveen, H. Nagarajaiah, Miao Wang, Rudresha S.J., Sathish Reddy and Guruprasad A.M.2.1 Introduction 222.2 3D-Printed Electrochemical Sensor 262.3 3D-Printed Fabrication for Making Electrochemical Sensors 302.4 Conclusions 443 Nexus of Additive Manufacturing and Sensing for 3D-Printed Electrochemical Sensors 55Puja Kumari and Sandeep Chandrashekharappa3.1 Introduction 563.2 3D Printed Material Types 573.3 3D Printing Process 613.4 Additive Manufacturing Technologies for Polymers 673.5 Additive Manufacturing Technologies for Metals 683.6 Additive Manufacturing Technologies for Ceramics 693.7 Application of AM 704 Designing for Optimal Sensing and Microfluidics in Sensor Design for 3D Printed Electrochemical Sensors 83S. Nivetha Rajakumari, R. Baby Suneetha, P. Karpagavinayagam, C. Vedhi and Nagaraja Sreeharsha4.1 Introduction 844.2 Methods for Fabrication of 3D Printed Electrode 874.3 Three-Dimensional Printing Technologies 884.4 Methods of Enhanced Devices for Sensing 924.5 Optimization of Printing Parameters 934.6 Uses of Microfluidic 3D Electrode Sensors 944.7 Conclusion and Prospects for the Future 965 Multi-Material Printing and CAD Tools Usage for 3D-Printed Electrochemical Sensors 101S. Minisha, P. Rajakani, P. Karpagavinayagam, C. Vedhi and Nagaraja Sreeharsha5.1 Introduction 1025.2 Materials for Multi-Material Printing 1035.3 Conductive Materials 1035.4 Insulating Materials 1055.5 Sensitive Materials 1065.6 Printing Techniques 1085.7 Stereolithography (SLA) 1105.8 Direct Ink Writing (DIW) 1115.9 Inkjet Printing 1125.10 Design Process Using CAD Tools 1145.11 Simulation and Optimization 1155.12 Prototyping and Testing 1165.13 Applications of 3D-Printed Sensors 1185.14 Challenges and Future Directions 1185.15 Conclusion 1196 Optimization Techniques for 3D-Printed Electrochemical Sensors 127Pratibha S., Yashaswini and Vinay Kumar Y.B.6.1 Introduction 1286.2 Design of Optimization 1296.3 Selection of Materials for 3D-Printed Electrochemical Sensors 1306.4 Printing Techniques and Parameters 1316.5 Applications and Future Scope 1396.6 Conclusion 1397 Performance and Validation for 3D-Printed Electrochemical Sensors 143Prashanth S. Adarakatti7.1 Introduction: Overview of Electrochemical Sensors 1447.2 Fundamentals of 3D Printing for Electrochemical Sensors 1467.3 Functionalization of 3D-Printed Sensors 1627.4 Challenges and Future Directions 1687.5 Conclusion 1698 Applications of 3D-Printed Electrochemical Sensors in Medical Diagnostics 177Gulsu Keles, Utku Serhat Derici, Baris Burak Altunay, Pinar Yilgor and Sevinc Kurbanoglu8.1 Introduction 1798.2 Applications of 3D-Printed Electrochemical Sensors in Medical Diagnostics 1878.3 Emerging Trends and Future Applications 2368.4 Conclusion 2399 Application of 3D-Printed Electrochemical Sensors in Environmental Monitoring 251Aswathy S. Murali and Beena Saraswathyamma9.1 Introduction 2529.2 Conclusion 26310 Applications of 3D-Printed Electrochemical Sensors in Food Quality Control 269Vijayan Murugesan, Stanleydhinakar Mathan, Balaji Chettiannan, Gowdhaman Arumugam and Ramesh Rajendran10.1 Introduction to 3D-Printed Electrochemical Sensors 27010.2 Principles of Electrochemical Sensing in Food Quality Control 27210.3 Mechanisms of Detection and Measurement 28410.4 Applications in Food Quality Control 28610.5 Case Studies 28910.6 Advantages and Limitations of 3D-Printed Electrochemical Sensors 29210.7 Future Trends and Innovations 29410.8 Summary 29611 Applications of 3D-Printed Electrochemical Sensors in Energy and Industrial Processes 303Jahnavi H. K., Indumukhi B. C., Rajendra Prasad S., Nagaswarupa H. P. and Ramachandra Naik11.1 Introduction 30411.2 Types of 3D Printing Techniques 30611.3 Materials for 3D Printing Electrochemical Sensors 31011.4 Applications in Electrochemical Energy Storage 31211.5 Applications in Environmental Analysis 31311.6 Conclusion 31412 Applications of 3D-Printed Electrochemical Sensors in Agriculture 321Hülya Silah and Bengi Uslu12.1 Introduction 32212.2 3D Printing Technology and Its Importance for Sensors 32412.3 Implementations of 3D-Printed Electrochemical Sensors in Agriculture 32612.4 Conclusions and Future Perspectives 34113 Safety and Environmental Considerations of Three-Dimensional-Printed Electrochemical Sensors 351S. Kalaiarasi, G. Kavitha, S. Parameswari, P. Karpagavinayagam, C. Vedhi and Nagaraja Sreeharsha13.1 Introduction 35213.2 Basics of Three-Dimensional Printing 35313.3 Fabrication of 3D Electrode to Sensors and Actuators 35513.4 Applications of 3D Electrode for Sensors 35613.5 Conclusion 36314 Sustainable and Eco-Friendly 3D-Printed Electrochemical Sensors 369Riya Sharma, Jyotirmayee Sahoo and Sonu Gandhi14.1 Introduction 37014.2 Fundamentals of 3D Printing Technology in Sensor Fabrication 37114.3 Applications of Sustainable and 3D-Printed Electrochemical Sensors 38414.4 Conclusion and Future Perspectives 39215 Challenges and Future of 3D-Printed Electrochemical Sensors 401Vinayak Adimule, Santosh Nandi, Shankramma S. Nesargi, Vandna Sharma, Pankaj Kumar and Praveen Barmavatu15.1 Introduction 40215.2 Various 3D Printing Methods 40415.3 3D Printing in Electrochemical Sensors 41415.4 Challenges and Future Prospects 41715.5 Conclusion 418Acknowledgments 419References 419Index 427