Ideal design of air electrode—A step closer toward robust rechargeable Zn–air battery

To develop a structural design that could provide accessible active sites to oxygen, electrolyte, and electron, it is necessary to modify the overall structure of an air electrode, which is considered as the most significant and complicated part of Zn–air batteries (ZABs). This review highlights the...

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Main Authors: Gracita M. Tomboc, Peng Yu, Taehyun Kwon, Kwangyeol Lee, Jinghong Li
Format: Article
Language:English
Published: AIP Publishing LLC 2020-05-01
Series:APL Materials
Online Access:http://dx.doi.org/10.1063/5.0005137
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spelling doaj-5d344ae54ef54799a685c230a3f518822020-11-25T02:49:58ZengAIP Publishing LLCAPL Materials2166-532X2020-05-0185050905050905-2010.1063/5.0005137Ideal design of air electrode—A step closer toward robust rechargeable Zn–air batteryGracita M. Tomboc0Peng Yu1Taehyun Kwon2Kwangyeol Lee3Jinghong Li4Department of Chemistry and Research Institute for Natural Sciences, Korea University, Seoul 02841, South KoreaKey Laboratory for Photonic and Electronic Bandgap Materials, Ministry of Education, School of Physics and Electronic Engineering, Harbin Normal University, Harbin 150025, ChinaDepartment of Chemistry and Research Institute for Natural Sciences, Korea University, Seoul 02841, South KoreaDepartment of Chemistry and Research Institute for Natural Sciences, Korea University, Seoul 02841, South KoreaDepartment of Chemistry, Key Laboratory of Bioorganic Phosphorus Chemistry & Chemical Biology, Tsinghua University, Beijing 100084, ChinaTo develop a structural design that could provide accessible active sites to oxygen, electrolyte, and electron, it is necessary to modify the overall structure of an air electrode, which is considered as the most significant and complicated part of Zn–air batteries (ZABs). This review highlights the structural features essential to satisfy the design of the cathode compartment of ZABs and presents the associated factors that drive the oxygen reactions in the air electrode based on the relationship between the intrinsic activities of bifunctional O2 catalysts and the collective strategies employed to modify the electronic structure of such electrocatalysts. The first part describes the fundamentals of an ideal air electrode with its corresponding oxygen electrochemical reactions and typical bifunctional O2 catalysts. In-depth discussion of O2 catalysts for air electrodes and progress of binder-free air electrodes for ZABs are presented in the following based on three major modification strategies: defect engineering, cation/anion regulation in multi-components transition metal compounds, and single or multi-heteroatom doping in carbon materials (metal-free and metal-based material). The final part summarizes the properties of air electrodes needed to fulfill the requirements of electrically rechargeable ZABs and provides ideas for the future designs of air electrodes.http://dx.doi.org/10.1063/5.0005137
collection DOAJ
language English
format Article
sources DOAJ
author Gracita M. Tomboc
Peng Yu
Taehyun Kwon
Kwangyeol Lee
Jinghong Li
spellingShingle Gracita M. Tomboc
Peng Yu
Taehyun Kwon
Kwangyeol Lee
Jinghong Li
Ideal design of air electrode—A step closer toward robust rechargeable Zn–air battery
APL Materials
author_facet Gracita M. Tomboc
Peng Yu
Taehyun Kwon
Kwangyeol Lee
Jinghong Li
author_sort Gracita M. Tomboc
title Ideal design of air electrode—A step closer toward robust rechargeable Zn–air battery
title_short Ideal design of air electrode—A step closer toward robust rechargeable Zn–air battery
title_full Ideal design of air electrode—A step closer toward robust rechargeable Zn–air battery
title_fullStr Ideal design of air electrode—A step closer toward robust rechargeable Zn–air battery
title_full_unstemmed Ideal design of air electrode—A step closer toward robust rechargeable Zn–air battery
title_sort ideal design of air electrode—a step closer toward robust rechargeable zn–air battery
publisher AIP Publishing LLC
series APL Materials
issn 2166-532X
publishDate 2020-05-01
description To develop a structural design that could provide accessible active sites to oxygen, electrolyte, and electron, it is necessary to modify the overall structure of an air electrode, which is considered as the most significant and complicated part of Zn–air batteries (ZABs). This review highlights the structural features essential to satisfy the design of the cathode compartment of ZABs and presents the associated factors that drive the oxygen reactions in the air electrode based on the relationship between the intrinsic activities of bifunctional O2 catalysts and the collective strategies employed to modify the electronic structure of such electrocatalysts. The first part describes the fundamentals of an ideal air electrode with its corresponding oxygen electrochemical reactions and typical bifunctional O2 catalysts. In-depth discussion of O2 catalysts for air electrodes and progress of binder-free air electrodes for ZABs are presented in the following based on three major modification strategies: defect engineering, cation/anion regulation in multi-components transition metal compounds, and single or multi-heteroatom doping in carbon materials (metal-free and metal-based material). The final part summarizes the properties of air electrodes needed to fulfill the requirements of electrically rechargeable ZABs and provides ideas for the future designs of air electrodes.
url http://dx.doi.org/10.1063/5.0005137
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