The Role of High‐Entropy Materials in Lithium‐Based Rechargeable Batteries

Author:

Guo Rongnan1,Yang Yi23,Zhao Chongchong3,Huo Feng345,Xue Jiaojiao2,He Jinhai2,Sun Bowen2,Sun Zixu2ORCID,Liu Hua Kun6,Dou Shi Xue6

Affiliation:

1. College of Mechanical & Electrical Engineering Henan Agricultural University Zhengzhou 450002 China

2. Key Lab for Special Functional Materials of Ministry of Education School of Materials Science and Engineering Henan University Kaifeng 475004 China

3. Henan Key Laboratory of Energy Storage Materials and Processes Zhengzhou Institute of Emerging Industrial Technology Zhengzhou 450003 China

4. Beijing Key Laboratory of Ionic Liquids Clean Process CAS Key Laboratory of Green Process and Engineering State Key Laboratory of Multiphase Complex Systems Institute of Process Engineering Chinese Academy of Sciences Beijing 100190 China

5. Longzihu New Energy Laboratory Henan University Zhengzhou 450046 China

6. Institute of Energy Materials Science University of Shanghai for Science and Technology Shanghai 200093 China

Abstract

AbstractThe low energy density, safety concerns, and high cost associated with conventional lithium‐ion batteries pose challenges in meeting the growing demands of emerging applications. While lithiumsulfur batteries (LSBs) offer high specific capacity, their commercial viability is hindered by the prevalent issue of shuttle effects. Furthermore, the potential of solid‐state lithium batteries is constrained by the suboptimal ionic conductivity and significant interphase problems. High‐entropy materials (HEMs) have emerged as a strategic approach for the development of innovative materials possessing exceptional properties. In recent times, some studies have been undertaken to explore the potential of HEMs in lithium‐based rechargeable batteries, showcasing their favorable characteristics. This work provides a comprehensive overview of the impact of various factors associated with HEM materials, encompassing elements, structure, and morphology, on the reversibility of reactions and cycling stability. This work also presents an analysis of the effects of elements and morphology on the properties of HEMs in LSBs, which can trap soluble lithium polysulfides and enhance reaction kinetics. Additionally, the work provides an overview of high‐entropy electrolytes, including both solid‐state and non‐aqueous liquid electrolytes. Furthermore, the research outlines future research directions aimed at investigating more efficient HEMs and enhancing the overall performance of lithium‐based rechargeable batteries.

Funder

National Natural Science Foundation of China

Natural Science Foundation of Henan Province

Publisher

Wiley

Subject

Electrochemistry,Condensed Matter Physics,Biomaterials,Electronic, Optical and Magnetic Materials

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