材料科学
异质结
电解质
锂(药物)
热稳定性
化学工程
位阻效应
离子键合
合理设计
纳米技术
离子电导率
金属锂
金属
设计要素和原则
星团(航天器)
吸附
金属有机骨架
密度泛函理论
离子液体
热的
材料设计
作者
Chaofei Guo,Yingnan Cao,Xiao Yu,Xiongwei Wu,Yangkai Ren,Yao Xiao,Jingyu Sun,Xi‐Ping Luo
摘要
ABSTRACT The rational design of solid‐state electrolytes (SSEs) with high ionic conductivity, interfacial robustness, and thermal stability remains a critical challenge for lithium metal batteries (LMBs). Herein, we established the crystal‐transformed hydrogen‐bonded organic framework/trinuclear Cu cluster organic framework heterostructures (HOFa/TrCuMOF 8 ) as thermally stable SSEs for LMBs. The crystal‐transformed HOF/MOF heterostructure constructs continuous low‐energy Li + transport pathways, while the pendant ‐CH 3 with strong steric hindrance induces anion adsorption to effectively suppress TFSI − migration. Meanwhile, coordination‐confined TrCu synergizes with imine (C = N) groups to create a dynamically polarized local electronic environment through Li + ‐induced charge redistribution, thereby promoting selective Li + transport. Consequently, the HOFa/TrCuMOF 8 SSEs deliver a high Li + transference number (0.94) and ionic conductivity (2.7 mS cm −1 at 30°C). Compared with polypropylene (PP) separators, the flexible HOFa/TrCuMOF 8 SSEs maintain structural integrity at high temperatures (180°C), effectively suppressing electrolyte shrinkage and thermal short‐circuit propagation. The assembled Li|HOFa/TrCuMOF 8 SSEs|LiFePO 4 LMBs achieve 97.8% capacity retention after 1000 cycles at 2 C and maintain stable cycling even at 100°C. Remarkably, the Li|HOFa/TrCuMOF 8 SSEs|NCM811 pouch cell exhibits an impressive energy density of 259.4 Wh kg −1 with enhanced thermal safety. This work provides a crystal‐transformation strategy for engineering HOF/MOF heterostructures toward thermally stable solid‐state lithium batteries.
科研通智能强力驱动
Strongly Powered by AbleSci AI