Engineering Triple‐Phase Interfaces around the Anode toward Practical Alkali Metal–Air Batteries

Author:

Ge Bingcheng1,Hu Liang1,Yu Xiaoliang1ORCID,Wang Lixu2,Fernandez Carlos3,Yang Nianjun4,Liang Qinghua5,Yang Quan‐Hong6ORCID

Affiliation:

1. Department of Mechanical Engineering and Research Institute for Smart Energy The Hong Kong Polytechnic University Hong Kong 999077 China

2. Fujian XFH New Energy Materials Co, Ltd No. 38, Shuidong Industry Park Yongan 366000 China

3. School of Pharmacy and Life Sciences Robert Gordon University Aberdeen AB107QB UK

4. Department of Chemistry & IMO–IMOMEC Hasselt University Diepenbeek 3590 Belgium

5. Key Laboratory of Rare Earth Ganjiang Innovation Academy Chinese Academy of Sciences Ganzhou Jiangxi 341000 China

6. Nanoyang Group Tianjin Key Laboratory of Advanced Carbon and Electrochemical Energy Storage School of Chemical Engineering and Technology TianjinUniversity Tianjin 300072 China

Abstract

AbstractAlkali metal–air batteries (AMABs) promise ultrahigh gravimetric energy densities, while the inherent poor cycle stability hinders their practical application. To address this challenge, most previous efforts are devoted to advancing the air cathodes with high electrocatalytic activity. Recent studies have underlined the solid–liquid–gas triple‐phase interface around the anode can play far more significant roles than previously acknowledged by the scientific community. Besides the bottlenecks of uncontrollable dendrite growth and gas evolution in conventional alkali metal batteries, the corrosive gases, intermediate oxygen species, and redox mediators in AMABs cause more severe anode corrosion and structural collapse, posing greater challenges to the stabilization of the anode triple‐phase interface. This work aims to provide a timely perspective on the anode interface engineering for durable AMABs. Taking the Li–air battery as a typical example, this critical review shows the latest developed anode stabilization strategies, including formulating electrolytes to build protective interphases, fabricating advanced anodes to improve their anti‐corrosion capability, and designing functional separator to shield the corrosive species. Finally, the remaining scientific and technical issues from the prospects of anode interface engineering are highlighted, particularly materials system engineering, for the practical use of AMABs.

Funder

Natural Science Foundation of Guangdong Province

Innovation and Technology Fund

Natural Science Foundation of Jiangxi Province

Chinese Academy of Sciences

National Natural Science Foundation of China

Publisher

Wiley

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