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Review

Designing Advanced Liquid Electrolytes for Alkali Metal Batteries: Principles, Progress, and Perspectives

Wanming Teng1,2Junxiong Wu4Qinghua Liang5 Jiaojiao Deng6( )Yu Xu7Qiong Liu7Biao Wang7Ting Ma2Ding Nan1,2 ( )Jun Liu2Baohua Li6 ( )Qingsong Weng3Xiaoliang Yu3 ( )
College of Chemistry and Chemical Engineering, Inner Mongolia University, Hohhot 010021, China
Inner Mongolia Key Laboratory of Graphite and Graphene for Energy Storage and Coating, School of Materials Science and Engineering, Inner Mongolia University of Technology, Hohhot 010051, China
Department of Mechanical Engineering, Research Institute for Smart Energy, The Hong Kong Polytechnic University, Hong Kong, China
College of Environmental Science and Engineering, Fujian Normal University, Fuzhou 350007, China
Department of Chemical Engineering, The University of Melbourne, Parkville VIC 3010, Australia
Shenzhen Key Laboratory on Power Battery Safety and Shenzhen Geim Graphene Center, Tsinghua Shenzhen International Graduate School (SIGS), Shenzhen 518071, China
Inner Mongolia Enterprise Key Laboratory of High Voltage and Insulation Technology, Inner Mongolia Electric Power (Group) Co. Ltd, Hohhot 010020, China
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Abstract

The ever-growing pursuit of high energy density batteries has triggered extensive efforts toward developing alkali metal (Li, Na, and K) battery (AMB) technologies owing to high theoretical capacities and low redox potentials of metallic anodes. Typically, for new battery systems, the electrolyte design is critical for realizing the battery electrochemistry of AMBs. Conventional electrolytes in alkali ion batteries are generally unsuitable for sustaining the stability owing to the hyper-reactivity and dendritic growth of alkali metals. In this review, we begin with the fundamentals of AMB electrolytes. Recent advancements in concentrated and fluorinated electrolytes, as well as functional electrolyte additives for boosting the stability of Li metal batteries, are summarized and discussed with a special focus on structure–composition–performance relationships. We then delve into the electrolyte formulations for Na- and K metal batteries, including those in which Na/K do not adhere to the Li-inherited paradigms. Finally, the challenges and the future research needs in advanced electrolytes for AMB are highlighted. This comprehensive review sheds light on the principles for the rational design of promising electrolytes and offers new inspirations for developing stable AMBs with high performance.

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Cite this article:
Teng W, Wu J, Liang Q, et al. Designing Advanced Liquid Electrolytes for Alkali Metal Batteries: Principles, Progress, and Perspectives. Energy & Environmental Materials, 2023, 6(2). https://doi.org/10.1002/eem2.12355

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Received: 01 December 2021
Revised: 07 January 2022
Published: 12 January 2022
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