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弱配位电解质实现在超低温度下的锂金属电池中的快速锂离子传输。

Weak-Coordination Electrolyte Enabling Fast Li Transport in Lithium Metal Batteries at Ultra-Low Temperature.

机构信息

Department of Petroleum, Oil and Lubricants, Army Logistics Academy, Chongqing, 401311, P. R. China.

College of Chemical Engineering, Fuzhou University, Fuzhou, 350116, P. R. China.

出版信息

Small. 2023 Jun;19(23):e2207093. doi: 10.1002/smll.202207093. Epub 2023 Mar 8.

DOI:10.1002/smll.202207093
PMID:36890773
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 LiNi Co Mn O (NCM811) cathode exhibits a higher discharge capacity of 84.2 mAh g and energy density of 195.0 Wh kg than that of the cathode (1.6 mAh g and 3.9 Wh kg ) 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.

摘要

锂金属电池(LMBs)由于具有最高的比容量和最低的锂金属阳极电位,有望成为下一代高能量密度电池。然而,由于在商业碳酸乙烯酯(EC)基电解液中在超低温(例如低于-30°C)下存在冻结问题和锂去溶剂化过程缓慢,LMB 通常会遇到极端寒冷条件下容量急剧衰减的问题。为了克服上述挑战,设计了一种具有较弱 Li 配位和较低冰点(低于-60°C)的抗冻丙酸甲酯(MP)基电解液,并相应的 LiNi Co Mn O(NCM811)正极在-60°C 下在商用 EC 基电解液中工作的 NCM811|Li 电池的放电容量高达 84.2 mAh g 和能量密度为 195.0 Wh kg,高于正极(1.6 mAh g 和 3.9 Wh kg)。分子动力学模拟、拉曼光谱和核磁共振表征表明,MP 基电解液中实现了丰富的可移动 Li 和具有较弱 Li 配位的独特溶剂化结构,这共同促进了低温下的 Li 迁移过程。这项工作通过调节溶剂化结构为低温电解液提供了基本的见解,并为 LMBs 的低温电解液设计提供了基本的指导原则。

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