Changqi Gu, Wenyu Ding, Hongbo Tai, Li Fan, Jianing Yang, Zhiliang Liu, Xiaomin Kang
The low ionic conductivity (σ) and poor capacity retention severely hinder the further application of solid-state electrolytes (SSEs) in lithium–metal batteries (LMBs). Herein, novel trinuclear cluster-based metal–organic frameworks (MOFs) with rich cage cavities and characteristic functional group −OH have been synthesized, Ni-MOF–OH ({[H 2 N(CH 3 ) 2 ] 2 [Ni 3 (μ 3 -O)(XN)(BDC–OH) 3 ]·7.5 DMF} n ), and further modified with LiOH into Ni-MOF-OLi-1 . The Ni-MOF-OLi-1 SSE exhibits a significant improvement in electrochemical performance with a higher σ of 1.55 × 10 –3 S cm –1, a wider electrochemical stability window of 5.3 V, and a better Li + transference number of 0.69 in comparison with that of Ni-MOF–OH (5.06 × 10 –4 S cm –1, 4.9 V, 0.53) at 25 °C. Importantly, Ni-MOF-OLi-1 can maintain excellent σ of 2.49 × 10 –4 and 3.18 × 10 –3 S cm –1 at −40 and 100 °C, respectively. The activation energy ( E a ) is as low as 0.09 eV from 10 to 100 °C. Remarkably, the LiFePO 4 (LFP)/Li cell assembled with the Ni-MOF-OLi-1 SSE demonstrates an outstanding capacity retention of 96.33% after 150 charge–discharge cycles at 0.5C and 25 °C. This work provides an effective path for the development of high-performance solid electrolytes of LMBs.