PCFM Laboratory, GD HPPC Laboratory, Guangdong Engineering Technology Research Centre for High-Performance Organic and Polymer Photoelectric Functional Films, State Key Laboratory of Optoelectronic Materials and Technologies, School of Chemistry, Sun Yat-sen University, Guangzhou 510275, China.
Shenzhen Yanyi New Materials Co Ltd., Shenzhen 518110, P. R. China.
ACS Appl Mater Interfaces. 2023 Jun 28;15(25):30913-30923. doi: 10.1021/acsami.3c01788. Epub 2023 Jun 19.
To improve the lithium-ion transporting ability in lithium-ion batteries, a high-performance polyimide-based lithium-ion battery separator (PI-mod) was prepared by chemically grafting poly(ethylene glycol) (PEG) onto the surface of a heat-resistant polyimide nanofiber matrix with the assistance of amino-rich polyethyleneimine (PEI). The resulted PEI-PEG polymer coating exhibited unique gel-like properties with an electrolyte uptake rate of 168%, an area resistance as low as 2.60 Ω·cm, and an ionic conductivity up to 2.33 mS·cm, which are 3.5, 0.10, and 12.3 times that of the commercial separator Celgard 2320, respectively. Meanwhile, the heat-resistant polyimide skeleton can effectively avoid thermal shrinkage of the modified separator even after 200 °C treatment for 0.5 h, which ensures the safety of the battery working under extreme conditions. The modified PI separator possessed a high electrochemical stability window of 4.5 V. Compared with the batteries from the commercial separator Celgard 2320 and the pure polyimide matrix, the assembled coin cell with the PI-mod separator showed much better rate capabilities and capacity retention due to the high electrolyte affinity of the PEI-PEG polymer coating. The developed strategy of using the electrolyte-swollen polymer to modify the thermal-resistant separator network provides an efficient way for establishing high-power lithium-ion batteries with good safety performance.
为了提高锂离子电池的锂离子传输能力,通过在耐热聚酰亚胺纳米纤维基质表面化学接枝聚乙二醇(PEG),在富含氨基的聚乙烯亚胺(PEI)的辅助下,制备了一种高性能的聚酰亚胺基锂离子电池隔膜(PI-mod)。得到的 PEI-PEG 聚合物涂层具有独特的凝胶状性质,其电解质吸收率为 168%,面电阻低至 2.60 Ω·cm,离子电导率高达 2.33 mS·cm,分别是商业隔膜 Celgard 2320 的 3.5、0.10 和 12.3 倍。同时,耐热聚酰亚胺骨架即使在 200°C 处理 0.5 小时后也能有效避免改性隔膜的热收缩,这确保了电池在极端条件下工作的安全性。改性 PI 隔膜具有 4.5 V 的高电化学稳定窗口。与商业隔膜 Celgard 2320 和纯聚酰亚胺基质组装的电池相比,由于 PEI-PEG 聚合物涂层对电解质的高亲和力,带有 PI-mod 隔膜的组装硬币电池具有更好的倍率性能和容量保持率。使用溶胀聚合物改性耐热分离网络的开发策略为建立具有良好安全性能的高功率锂离子电池提供了一种有效途径。