Chaofei Guo, Yingnan Cao, Xiao Yu, Xiongwei Wu, Yangkai Ren, Yao Xiao, Jingyu Sun, Xiping Luo
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/TrCuMOF8) as thermally stable SSEs for LMBs. The crystal-transformed HOF/MOF heterostructure constructs continuous low-energy Li+ transport pathways, while the pendant -CH3 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/TrCuMOF8 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/TrCuMOF8 SSEs maintain structural integrity at high temperatures (180°C), effectively suppressing electrolyte shrinkage and thermal short-circuit propagation. The assembled Li|HOFa/TrCuMOF8 SSEs|LiFePO4 LMBs achieve 97.8% capacity retention after 1000 cycles at 2 C and maintain stable cycling even at 100°C. Remarkably, the Li|HOFa/TrCuMOF8 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.