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Weak-Coordination Electrolyte Enabling Fast Li+ Transport in Lithium Metal Batteries at Ultra-Low Temperature
Authors:Wang Lin  Jidao Li  Jingshu Wang  Kecheng Gu  Heng Li  Zhu Xu  Kexuan Wang  Feng Wang  Mengyu Zhu  You Fan  Huibo Wang  Guangjian Tao  Na Liu  Maofeng Ding  Shi Chen  Jiang Wu  Yuxin Tang
Affiliation:1. Department of Petroleum, Oil and Lubricants, Army Logistics Academy, Chongqing, 401311 P. R. China;2. College of Chemical Engineering, Fuzhou University, Fuzhou, 350116 P. R. China;3. State Key Laboratory of High Performance Ceramics and Superfine Microstructure, Shanghai Institute of Ceramics, Chinese Academy of Sciences, Shanghai, 200050 P. R. China;4. Institute of Applied Physics and Materials Engineering, University of Macau, Macau, 999078 P. R. China
Abstract:Lithium metal batteries (LMBs) are promising for next-generation high-energy-density batteries owing to the highest specific capacity and the lowest potential of Li metal anode. However, the LMBs are normally confronted with drastic capacity fading under extremely cold conditions mainly due to the freezing issue and sluggish Li+ desolvation process in commercial ethylene carbonate (EC)-based electrolyte at ultra-low temperature (e.g., below ?30 °C). To overcome the above challenges, an anti-freezing carboxylic ester of methyl propionate (MP)-based electrolyte with weak Li+ coordination and low-freezing temperature (below ?60 °C) is designed, and the corresponding LiNi0.8Co0.1Mn0.1O2 (NCM811) cathode exhibits a higher discharge capacity of 84.2 mAh g?1 and energy density of 195.0 Wh kg?1cathode than that of the cathode (1.6 mAh g?1 and 3.9 Wh kg?1cathode) working in commercial EC-based electrolytes for NCM811‖ Li cell at ?60 °C. Molecular dynamics simulation, Raman spectra, and nuclear magnetic resonance characterizations reveal that rich mobile Li+ and the unique solvation structure with weak Li+ coordination are achieved in MP-based electrolyte, which collectively facilitate the Li+ transference process at low temperature. This work provides fundamental insights into low-temperature electrolytes by regulating solvation structure, and offers the basic guidelines for the design of low-temperature electrolytes for LMBs.
Keywords:binding energy  carboxylic ester  electrolytes  lithium metal batteries  low temperature  solvation structures
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