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Development of Redox Mediators for High-Energy-Density and High-Efficiency Lithium-Oxygen Batteries

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  • © 2021

Overview

  • Nominated as an outstanding Ph.D. thesis by the Seoul National University, Seoul, South Korea
  • Introduces the working mechanism and impact of redox mediators in improving the performance of lithium-oxygen battery
  • Provides comprehensive studies in developing high-performance redox mediators

Part of the book series: Springer Theses (Springer Theses)

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Table of contents (5 chapters)

Keywords

About this book

This thesis addresses the introduction of redox mediator into lithium-oxygen batteries to improve their electrochemical performance especially in terms of practical energy density and round-trip efficiency. In chapter 1, basic electrochemistry regarding lithium-oxygen batteries and redox mediators are introduced. In chapter  2 to 4,  comprehensive researches including the discovery of a new redox mediator inspired by biological system, the investigation on kinetic property of redox mediator, and the prevention of shuttle phenomenon are introduced, followed by chapter 5 summarizing the contents. This thesis is targeted to students and researchers interested in electrochemistry and energy storage systems. 

Authors and Affiliations

  • Department of Materials Science and Engineering, Seoul National University, Seoul, Korea (Republic of)

    Youngmin Ko

About the author

Dr. Youngmin Ko  received a B.Sc. degree (2016) and Ph.D. degree (2021) in materials science and engineering from Seoul National University.

Bibliographic Information

  • Book Title: Development of Redox Mediators for High-Energy-Density and High-Efficiency Lithium-Oxygen Batteries

  • Authors: Youngmin Ko

  • Series Title: Springer Theses

  • DOI: https://doi.org/10.1007/978-981-16-2532-9

  • Publisher: Springer Singapore

  • eBook Packages: Engineering, Engineering (R0)

  • Copyright Information: The Editor(s) (if applicable) and The Author(s), under exclusive license to Springer Nature Singapore Pte Ltd. 2021

  • Hardcover ISBN: 978-981-16-2531-2Published: 10 June 2021

  • Softcover ISBN: 978-981-16-2534-3Published: 11 June 2022

  • eBook ISBN: 978-981-16-2532-9Published: 09 June 2021

  • Series ISSN: 2190-5053

  • Series E-ISSN: 2190-5061

  • Edition Number: 1

  • Number of Pages: XX, 68

  • Number of Illustrations: 7 b/w illustrations, 54 illustrations in colour

  • Topics: Energy Materials, Electrochemistry

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