Entropy‐Driven Liquid Electrolytes for Lithium Batteries

Author:

Wang Qidi1,Zhao Chenglong1ORCID,Yao Zhenpeng2,Wang Jianlin3,Wu Fangting4,Kumar Sai Govind Hari5,Ganapathy Swapna1,Eustace Stephen6,Bai Xuedong3,Li Baohua4,Lu Jun7,Wagemaker Marnix1ORCID

Affiliation:

1. Department of Radiation Science and Technology Delft University of Technology Delft 2629JB The Netherlands

2. The State Key Laboratory of Metal Matrix Composites School of Materials Science and Engineering Center of Hydrogen Science Shanghai Jiao Tong University Shanghai 200240 China

3. State Key Laboratory for Surface Physics Institute of Physics Chinese Academy of Sciences Beijing 100190 China

4. Shenzhen Key Laboratory on Power Battery Safety and Shenzhen Geim Graphene Center School of Shenzhen International Graduate Tsinghua University Guangdong 518055 China

5. Department of Chemistry and Computer Science University of Toronto Ontario M5S 3H6 Canada

6. Department of Biotechnology Delft University of Technology Delft 2629HZ The Netherlands

7. College of Chemical and Biological Engineering Zhejiang University Hangzhou 310027 China

Abstract

AbstractDeveloping liquid electrolytes with higher kinetics and enhanced interphase stability is one of the key challenges for lithium batteries. However, the poor solubility of lithium salts in solvents sets constraints that compromises the electrolyte properties. Here, it is shown that introducing multiple salts to form a high‐entropy solution, alters the solvation structure, which can be used to raise the solubility of specific salts and stabilize electrode–electrolyte interphases. The prepared high‐entropy electrolytes significantly enhance the cycling and rate performance of lithium batteries. For lithium‐metal anodes the reversibility exceeds 99%, which extends the cycle life of batteries even under aggressive cycling conditions. For commercial batteries, combining a graphite anode with a LiNi0.8Co0.1Mn0.1O2 cathode, more than 1000 charge–discharge cycles are achieved while maintaining a capacity retention of more than 90%. These performance improvements with respect to regular electrolytes are rationalized by the unique features of the solvation structure in high‐entropy electrolytes. The weaker solvation interaction induced by the higher disorder results in improved lithium‐ion kinetics, and the altered solvation composition leads to stabilized interphases. Finally, the high‐entropy, induced by the presence of multiple salts, enables a decrease in melting temperature of the electrolytes and thus enables lower battery operation temperatures without changing the solvents.

Funder

National Natural Science Foundation of China

Chinese Academy of Sciences

Publisher

Wiley

Subject

Mechanical Engineering,Mechanics of Materials,General Materials Science

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