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E-raamat: Electrochemical Energy Conversion and Storage Systems for Future Sustainability: Technological Advancements [Taylor & Francis e-raamat]

Edited by (National Institute of Science Education and Research, India), Edited by (Indian Institute of Technology, India)
  • Formaat: 356 pages, 7 Tables, black and white; 14 Illustrations, color; 75 Illustrations, black and white
  • Ilmumisaeg: 17-Nov-2020
  • Kirjastus: Apple Academic Press Inc.
  • ISBN-13: 9781003009320
  • Taylor & Francis e-raamat
  • Hind: 221,58 €*
  • * hind, mis tagab piiramatu üheaegsete kasutajate arvuga ligipääsu piiramatuks ajaks
  • Tavahind: 316,54 €
  • Säästad 30%
  • Formaat: 356 pages, 7 Tables, black and white; 14 Illustrations, color; 75 Illustrations, black and white
  • Ilmumisaeg: 17-Nov-2020
  • Kirjastus: Apple Academic Press Inc.
  • ISBN-13: 9781003009320
"This new volume discusses new and well-known electrochemical energy harvesting, conversion, and storage techniques. It provides significant insight into the current progress being made in this field and suggests plausible solutions to the future energy crisis along with approaches to mitigate environmental degradation caused by energy generation, production, and storage. Topics in Electrochemical Energy Conversion and Storage Systems for Future Sustainability : Technological Advancements address photoelectrochemical catalysis by ZnO, hydrogen oxidation reaction for fuel cell application, and miniaturized energy storage devices in the form of micro-supercapacitors. The volume looks at the underlying mechanisms and acquired first-hand information on how to overcome some of the critical bottlenecks to achieve long-term and reliable energy solutions. The detailed synthesis processes that have been tried and tested over time through rigorous attempts of many researchers can help in selecting the most effective and economical ways to achieve maximum output and efficiency, without going through time-consuming and complex steps. The theoretical analyses and computational results corroborate the experimental findings for better and reliable energy solutions. Thechapters provide a clear understanding of the background and working principles of several well-known energy harvesting and storage technologies. In addition, the new concepts discussed, such as microsupercapacitors, CO oxidation, and CO2 reduction, willprovide opportunities for further research and development in the relevant field. Key features : Considers the role of nanostructured materials and their conjugates for sustainable energy Reviews practical applications of the prototypes developed from nanostructured materials Addresses the shortcomings of traditional battery technologies Shows the advantage of electrochemical capacitors and fuel cell Emphasizes the important role of various parameters on the charge storage performance of the electrochemical capacitors"--

This new volume discusses new and well-known electrochemical energy harvesting, conversion, and storage techniques. It provides significant insight into the current progress being made in this field and suggests plausible solutions to the future energy crisis along with approaches to mitigate environmental degradation caused by energy generation, production, and storage.

Topics in Electrochemical Energy Conversion and Storage Systems for Future Sustainability: Technological Advancements address photoelectrochemical catalysis by ZnO, hydrogen oxidation reaction for fuel cell application, and miniaturized energy storage devices in the form of micro-supercapacitors. The volume looks at the underlying mechanisms and acquired first-hand information on how to overcome some of the critical bottlenecks to achieve long-term and reliable energy solutions. The detailed synthesis processes that have been tried and tested over time through rigorous attempts of many researchers can help in selecting the most effective and economical ways to achieve maximum output and efficiency, without going through time-consuming and complex steps. The theoretical analyses and computational results corroborate the experimental findings for better and reliable energy solutions.

Contributors xi
Abbreviations xiii
Symbols xxi
Foreword xxiii
Preface xxv
Introduction xxvii
1 Metal Chalcogenide-Based Electrochemical Capacitors
1(56)
Satyajit Ratha
Aneeya Kumar Samantara
2 Photoelectrochemical Reduction of CO2 and Electrochemical Oxidation of CO
57(36)
Surjendu Bhattacharyya
Biswajit Mishra
3 Hybrid Polymer Nanocomposites for Energy Storage/Conversion Devices: From Synthesis to Applications
93(34)
Anil Arya
A. L. Sharma
4 Process, Design, and Technological Integration of Flexible Microsupercapacitors
127(32)
Syed Mukulika Dinara
5 Catalytic Activities of Carbon-Based Nanostructures for Electrochemical CO2 Reduction: A Density Functional Approach
159(38)
Mihir Ranjan Sahoo
6 Catalyst for Hydrogen Oxidation Reaction and Its Application to Energy Storage
197(20)
Avijit Biswal
Avinna Mishra
7 Theoretical and Computational Investigations of Li-Ion Battery Materials and Electrolytes
217(34)
Anoop Kumar Kushwaha
8 Effect of Morphology and Doping on the Photoelectrochemical Performance of Zinc Oxide
251(38)
Akash Sharma
Pooja Sahoo
Alfa Sharma
Saswat Mohapatra
9 Methanol and Formic Acid Oxidation: Selective Fuel Cell Processes
289(24)
Tapan Kumar Behera
Pramod Kumar Satapathy
Priyabrat Mohapatra
Index 313
Aneeya Kumar Samantara, PhD, is presently working as a postdoctoral fellow in the School of Chemical Sciences, National Institute of Science Education and Research, Khordha, Odisha, India.

Satyajit Ratha, PhD, pursued his PhD at the Indian Institute of Technology Bhubaneswar, India.