Handbook of Supercapacitor Materials: Synthesis, Characterization, and Applications - Hardcover

 
9783527346875: Handbook of Supercapacitor Materials: Synthesis, Characterization, and Applications

Inhaltsangabe

The book gives a topical overview of novel, nature-inspired materials that can be used for fabrication of supercapacitors.

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Über die Autorin bzw. den Autor

Rajender Boddula is Research Fellow in the National Center for Nanoscience and Technology (NCNST) at Chinese Academy of Sciences, China. Before joining NCNST, he worked as senior researcher associate and post-doc at the Aligarh Muslim University, India, and the National Tsing-Hua University, Taiwan. His research focuses on energy conversion and storage technologies. He has published numerous journal articles and several book chapters.
 
Anish Khan is Assistant Professor in the Department of Chemistry at King Abdulaziz University, Saudi Arabia. After his PhD from Aligarh Muslim University, India, he did Postdoctoral research in the University Sains Malaysia, Malaysia. His research interests include synthetic Biosensors, polymer composites and organic-inorganic conducting nanocomposites. He has published more than 100 journal articles, several books and book chapters.
 
Abdullah Mohamed Asiri is Professor in the Department of Chemistry at King Abdulaziz University, Saudi Arabia. After his PhD From University of Walls College of Cardiff, U.K, he joined King Abdulaziz University and currently is Head of Chemistry Department. His research interests include the synthesis of photochromic and thermochromic systems as well as their applications. He has published more than 100 journal articles and several books.
 
Aleksandr Evhenovych Kolosov in Senior Researcher in the Department of Chemical Engineering of the National Technical University of Ukraine, Kiev. His research is focused on functional nanomaterials and polymer composites.

Von der hinteren Coverseite

Discover foundational and cutting-edge concepts in the supercapacitor materials industry

Dramatic population growth and the development of lightweight portable electronic devices have accelerated the demand for faster and more sustainable energy storage systems. Supercapacitors promise to revolutionize the field due to their high energy and power density, long cycle life, fast rate of charge-discharge, and excellent safety record.

In Handbook of Supercapacitor Materials: Synthesis, Characterization, and Applications, a distinguished team of researchers delivers a comprehensive review of nature-inspired, organic, inorganic, and polymeric materials used in supercapacitor technology. The book explores aspects of synthesis methods, properties, foundational concepts, and the mechanisms of supercapacitor electrode materials.

The distinguished editors also provide resources that focus on supercapacitor performance utilizing electrical double layer electrodes and pseudocapacitor electrodes. State-of-the-art research is discussed in detail and will be extraordinary useful for graduate students, faculty, engineers, and scientists in solid-state chemistry, energy science, and materials science departments.

Readers will also find:

  • Overviews of mussel-inspired materials for electrochemical supercapacitors, bio-inspired active materials for supercapacitors, and self-healing supercapacitors
  • Practical discussions of polysaccharide-derived materials for supercapacitors, bio-derived carbon-based materials for supercapacitors, and metal oxides
  • A thorough introduction to metal chalcogenides and metal hydroxides for supercapacitors
  • An examination of template strategy direction towards conducting polymer for supercapacitors
  • A treatment of the morphology paradigm of conducting polymers
  • Perfect for materials scientists, electrochemists, engineers in power technology, Handbook of Supercapacitor Materials: Synthesis, Characterization, and Applications is also a must-have resource for professionals working in the electrotechnical and automobile industries.

    Aus dem Klappentext

    Discover foundational and cutting-edge concepts in the supercapacitor materials industry

    Dramatic population growth and the development of lightweight portable electronic devices have accelerated the demand for faster and more sustainable energy storage systems. Supercapacitors promise to revolutionize the field due to their high energy and power density, long cycle life, fast rate of charge-discharge, and excellent safety record.

    In Handbook of Supercapacitor Materials: Synthesis, Characterization, and Applications, a distinguished team of researchers delivers a comprehensive review of nature-inspired, organic, inorganic, and polymeric materials used in supercapacitor technology. The book explores aspects of synthesis methods, properties, foundational concepts, and the mechanisms of supercapacitor electrode materials.

    The distinguished editors also provide resources that focus on supercapacitor performance utilizing electrical double layer electrodes and pseudocapacitor electrodes. State-of-the-art research is discussed in detail and will be extraordinary useful for graduate students, faculty, engineers, and scientists in solid-state chemistry, energy science, and materials science departments.

    Readers will also find:

    • Overviews of mussel-inspired materials for electrochemical supercapacitors, bio-inspired active materials for supercapacitors, and self-healing supercapacitors
    • Practical discussions of polysaccharide-derived materials for supercapacitors, bio-derived carbon-based materials for supercapacitors, and metal oxides
    • A thorough introduction to metal chalcogenides and metal hydroxides for supercapacitors
    • An examination of template strategy direction towards conducting polymer for supercapacitors
    • A treatment of the morphology paradigm of conducting polymers

    Perfect for materials scientists, electrochemists, engineers in power technology, Handbook of Supercapacitor Materials: Synthesis, Characterization, and Applications is also a must-have resource for professionals working in the electrotechnical and automobile industries.

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