Anion Regulation for High‐Performance Lithium–Sulfur Batteries
Abstract
Abstract Lithium–sulfur (Li–S) batteries, characterized by their high energy density and cost‐effectiveness, are the primary candidates for lithium‐ion batteries. Yet, critical challenges persist, largely owing to the polysulfide (PS) anion shuttle and the instability of the lithium metal anode (LMA). Salt anions are indispensable in batteries, which influence the basic properties of bulk electrolytes (e.g., solubility, stability, and ion conductivity) and the electrode–electrolyte interphases. Apart from those, the intrinsic characteristics of anions are of particular importance in Li–S batteries, as PS anions are major active intermediates that directly determine the sulfur redox kinetics and reversibility. However, the anion regulation needs further investigated, especially according to the Li–S chemistry. In this regard, fundamental considerations are provided on the anion engineering of Li–S batteries. Through a comprehensive analysis, the electrochemical behaviors of anions are reviewed. Then, the recent works on anion regulation for cathodes and anodes are summarized. For sulfur cathodes, the PSs dissolution, adsorption, conversion kinetics, and pathway are discussed in detail. For LMA, the influence of anion on lithium diffusion kinetic, the formation of SEI, and the anticorrosion are summarized. Finally, insights into the future development of anion studies are provided, aiming to identify more adequate anions for Li–S batteries.
Article Details
Authors (8)
Jiaqi Lan
Shenzhen All-Solid-State Lithium Battery Electrolyte Engineering Research Center, Key Laboratory of Electrocatalytic Materials and Green Hydrogen Technology of Guangdong Higher Education Institutes, Shenzhen Key Laboratory for Graphene-Based Materials, Institute of Materials Research, Tsinghua Shenzhen International Graduate School
Yun Cao
Key Laboratory of Evolution and Marine Biodiversity (Ministry of Education) and Institute of Evolution and Marine Biodiversity, Ocean University of China, Qingdao, China.
Chuannan Geng
Nanoyang Group, Tianjin Key Laboratory of Advanced Carbon and Electrochemical Energy Storage, State Key Laboratory of Chemical Engineering and Low-Carbon Technology, School of Chemical Engineering and Technology, National Industry-Education Platform for Energy Storage, and Collaborative Innovation Center of Chemical Science and Engineering (Tianjin)
Lijun Zheng
College of Chemical and Biological Engineering
Qiaowei Lin
Faculty of Materials Science and Energy Engineering
Da‐Wei Wang
Faculty of Materials Science and Energy Engineering Shenzhen University of Advanced Technology Shenzhen 518071 China
Wei Lv
Jun Lu