Molecule Design for Non‐Aqueous Wide‐Temperature Electrolytes via the Intelligentized Screening Method

Author:

Qin Tian12,Yang Haoyi1,Wang Lei1,Xue Weiran12,Yao Nan3,Li Quan1,Chen Xiang3,Yang Xiukang4,Yu Xiqian12ORCID,Zhang Qiang3,Li Hong12

Affiliation:

1. Beijing Frontier Research Center on Clean Energy Institute of Physics Chinese Academy of Sciences Beijing 100190 China

2. Center of Materials Science and Optoelectronics Engineering University of Chinese Academy of Sciences Beijing 100049 China

3. Beijing Key Laboratory of Green Chemical Reaction Engineering and Technology Department of Chemical Engineering Tsinghua University Beijing 100084 China

4. Key Laboratory of Environmentally Friendly Chemistry and Applications of Ministry of Education National Base for International Science & Technology Cooperation Hunan Province Key Laboratory for Electrochemical Energy Storage and Conversion School of Chemistry Xiangtan University Hunan Xiangtan 411105 China

Abstract

AbstractOperating a lithium‐ion battery (LIB) in a wide temperature range is essential for ensuring a stable electricity supply amidst fluctuating temperatures caused by climate or terrain changes. Electrolyte plays a pivotal role in determining the temperature durability of batteries. However, specialized electrolytes designed for either low or high temperatures typically possess distinct features. Therefore, wide‐temperature electrolytes (WTEs) are necessary as they encompass a combination of diverse properties, which complicates the clear instruction of WTE design. Here we represent an artificial intelligence (Al)‐assisted workflow of WTE design through stepwise parameterizations and calculations. Linear mono‐nitriles are identified as ideal wide‐liquidus‐range solvents that can “softly” solvate lithium ions by weak interactions. In addition, the explainable modules revealed the halogenoid similarity of cyanide as fluorine on the electrolyte properties (e.g. boiling point and dielectric constant). With the further introduction of an ether bond, 3‐methoxypropionitrile (MPN) has been eventually determined as a main electrolyte solvent, enabling the battery operation from −60 to 120 °C. Particularly, a LiCoO2/Li cell using the proposed WTE can realize stable cycling with capacity retention reaching 72.3 % after 50 cycles under a high temperature of 100 °C.

Funder

National Natural Science Foundation of China

Key Technologies Research and Development Program

Training Program for Excellent Young Innovators of Changsha

Publisher

Wiley

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