Li Ting, Chen Kai, Yang Borui, Li Kun, Li Bin, He Miao, Yang Liu, Hu Anjun, Long Jianping
College of Materials and Chemistry & Chemical Engineering, Chengdu University of Technology 1#, Dongsanlu, Erxianqiao Chengdu 610059 Sichuan P. R. China
State Key Laboratory of Electronic Thin Films and Integrated Devices, University of Electronic Science and Technology of China Chengdu 610054 Sichuan P. R. China.
Chem Sci. 2024 Jul 3;15(30):12108-12117. doi: 10.1039/d4sc02010c. eCollection 2024 Jul 31.
polymerized 1,3-dioxolane (PDOL) is widely utilized to construct solid polymer electrolytes because of its high room-temperature ionic conductivity and good compatibility with lithium metal. However, the current polymerization additives used in PDOL do not effectively contribute to the formation of a robust solid electrolyte interphase (SEI), leading to decreased cycle life. Herein, a film-forming Lewis acid, tris(hexafluoroisopropyl) borate (THB), is demonstrated not only to be a catalyst for the ring-opening polymerization of DOL, but also an additive for the formation of a stable fluorine- and boron-rich SEI to improve the interfacial stability and suppress the Li dendrite growth. Moreover, molecular dynamics simulations and experimental results demonstrate that the introduction of THB can promote the dissociation of lithium salt and release more Li while the boron site can effectively restrict the free movement of TFSI anion, thus increasing Li transference numbers (0.76) and ensuring the long-term cycling stability of cells. By using THB-PDOL, a stable cycling of Li‖Li symmetric cell for 600 h at a capacity of 0.5 mA h cm can be achieved. Furthermore, employing THB-PDOL in Li‖LiFePO full cell enables a capacity retention of 98.64% after 300 cycles at 1C and a capacity retention of 95.39% after 200 cycles at a high temperature (60 °C). At the same time, this electrolyte is also suitable for the Li‖NCM523 full cell, which also achieves excellent stability of more than 180 cycles. This film-forming Lewis acid additive provides ideas for designing low-cost, high-performance PDOL-based lithium metal batteries.
聚1,3 - 二氧戊环(PDOL)因其具有高的室温离子电导率以及与锂金属良好的相容性,而被广泛用于构建固体聚合物电解质。然而,目前用于PDOL的聚合添加剂并不能有效地促进形成坚固的固体电解质界面(SEI),导致循环寿命降低。在此,一种成膜路易斯酸,三(六氟异丙基)硼酸酯(THB),不仅被证明是DOL开环聚合的催化剂,而且是形成稳定的富含氟和硼的SEI的添加剂,以提高界面稳定性并抑制锂枝晶生长。此外,分子动力学模拟和实验结果表明,THB的引入可以促进锂盐的解离并释放更多的Li,而硼位点可以有效地限制TFSI阴离子的自由移动,从而提高Li迁移数(0.76)并确保电池的长期循环稳定性。通过使用THB - PDOL,Li‖Li对称电池在0.5 mA h cm的容量下可以实现600 h的稳定循环。此外,在Li‖LiFePO全电池中使用THB - PDOL,在1C下300次循环后容量保持率为98.64%,在高温(60°C)下200次循环后容量保持率为95.39%。同时,这种电解质也适用于Li‖NCM523全电池,其也实现了超过180次循环的优异稳定性。这种成膜路易斯酸添加剂为设计低成本、高性能的基于PDOL的锂金属电池提供了思路。