MOE Key Laboratory of Macromolecular Synthesis and Functionalization, Department of Polymer Science and Engineering, Zhejiang University, Hangzhou, 310027, China.
Macromol Rapid Commun. 2020 Apr;41(7):e1900622. doi: 10.1002/marc.201900622. Epub 2020 Feb 19.
The most daunting challenge of solid polymer electrolytes (SPEs) is the development of materials with simultaneously high ionic conductivity and mechanical strength. Herein, SPEs of lithium bis-(trifluoromethanesulfonyl)imide (LiTFSI)-doped poly(propylene monothiocarbonate)-b-poly(ethylene oxide) (PPMTC-b-PEO) block copolymers (BCPs) with both blocks associating with Li ions are prepared. It is found that the PPMTC-b-PEO/LiTFSI electrolytes with double conductive phases exhibit much higher ionic conductivity (2 × 10 S cm at r.t.) than the BCP electrolytes with a single conductive phase. Concurrently, the storage moduli of PPMTC -b-PEO /LiTFSI electrolytes are ≈1-4 orders of magnitude higher than that of the neat PEO/LiTFSI electrolytes. Therefore, simultaneous improvement of ionic conductivity and mechanical properties is achieved by construction of a microphase-separated and disordered structure with double conductive phases.
具有高离子电导率和机械强度的固体聚合物电解质(SPEs)的开发是目前面临的最艰巨的挑战。在此,我们制备了具有同时与锂离子结合的两个嵌段的聚(丙烯单硫代碳酸酯)-b-聚(环氧乙烷)(PPMTC-b-PEO)嵌段共聚物(BCPs)的双(三氟甲烷磺酰基)亚胺(LiTFSI)掺杂的锂 SPEs。结果发现,具有双导电相的 PPMTC-b-PEO/LiTFSI 电解质的离子电导率(在室温下为 2×10 S cm)比具有单导电相的 BCP 电解质高得多。同时,PPMTC-b-PEO/LiTFSI 电解质的储能模量比纯 PEO/LiTFSI 电解质高 1-4 个数量级。因此,通过构建具有双导电相的微相分离和无序结构,可以同时提高离子电导率和机械性能。