Li Dandan, Ding Lei, Zhang Sihang, Zhang Yuanjie, Zhang Peng-Fang, Du Fanghui, Zhao Shuyue, Zhang Daoxin, Yang Feng
Shandong Key Laboratory of Chemical Energy Storage and New Battery Technology, School of Chemistry and Chemical Engineering, Liaocheng University, No. 1, Hunan Road, Liaocheng 252000, China.
School of Food Science and Engineering, Hainan University, 58 Renmin Avenue, Haikou 570228, China.
ACS Appl Mater Interfaces. 2025 Jun 25;17(25):36739-36750. doi: 10.1021/acsami.5c06345. Epub 2025 Jun 11.
High energy and power densities of lithium metal batteries (LMBs) attract continuing popular appeal, but extra requirements must be considered since disordered Li dendrites under violent Li fluxes pose challenges for flourishing LMB applications, especially for incompatible separators. In this research, a BPP@F-SiO composited separator is subtly prepared based on the two-step grafted SiO (F-SiO) coating self-construction. F-SiO particles matched to lamellae sizes endow separators with centralized pore sizes. F-SiO coating self-construction on porous skeletons eliminates individual coating steps, which can simplify engineering equipment layouts and improve the actual manufacturing efficiency. Solvent-free and nonadhesive features avoid problems such as micropore blocking, thickness increase, and environmental pollution. Also, the F-SiO coating supplies extra Li for stabilizing the solid electrolyte interphase layer, homogenizing Li depositions, and acquiring remarkable electrochemical and battery performances for LMBs, which enable the BPP@F-SiO separator to be potentially applied in LMBs demanding sufficient security, high-capacity density, and fast charge technology. The proposed approach relies on current mainstream separator fabrication lines, which can achieve low-cost and large-scale production without developing extra production lines and lower practical application barriers of prospective LMBs.
锂金属电池(LMBs)的高能量和功率密度一直备受关注,但其枝晶锂在剧烈锂通量下无序生长,对蓬勃发展的LMB应用,尤其是与不相容的隔膜形成挑战,因此需要考虑额外的要求。在本研究中,基于两步接枝SiO(F-SiO)涂层自构建,巧妙地制备了BPP@F-SiO复合隔膜。与薄片尺寸匹配的F-SiO颗粒使隔膜具有集中的孔径。在多孔骨架上进行F-SiO涂层自构建消除了单独的涂层步骤,简化了工程设备布局,提高了实际制造效率。无溶剂和无粘合剂的特性避免了微孔堵塞、厚度增加和环境污染等问题。此外,F-SiO涂层为稳定固体电解质界面层提供额外的锂,使锂沉积均匀化,并为LMBs获得卓越的电化学和电池性能,这使得BPP@F-SiO隔膜有可能应用于对安全性、高容量密度和快速充电技术有要求的LMBs中。所提出的方法依赖于当前主流的隔膜生产线,无需开发额外的生产线即可实现低成本大规模生产,并降低了潜在LMBs的实际应用障碍。