Defect-Modulated MOF Nanochannels for the Quasi-Solid-State Electrolyte of a Dendrite-Free Lithium Metal Battery.

Jiang, Jialong; Zhang, Runhao; Guo, Jiachen; Zhang, Shiqi; Min, Xiangtai; Liu, Ziyang; Liu, Ning; Cao, Dapeng et al. · Nano Lett · 2025

basic_science · Level V

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Abstract

Efficient and selective Li<sup>+</sup> transport within the nanochannel is essential for high-performance solid-state electrolytes (SSEs) in lithium metal batteries. Introducing Li<sup>+</sup> hopping sites into SSEs shows great potential for promoting Li<sup>+</sup> transport; however, it typically reduces the Li<sup>+</sup> transport nanochannel size, consequently increasing the energy barrier for Li<sup>+</sup> transport. Herein, we present a molecular defect strategy for MOFs to introduce Li<sup>+</sup> hopping sites and increase the nanochannel size simultaneously as quasi-solid-state electrolytes (QSSEs). Compared with the defect-free Li@UiO-66-based QSSE, the optimized Li@UiO-66-D2-based QSSE exhibits a remarkable 343% enhancement in Li<sup>+</sup> conductivity and improved Li<sup>+</sup> selectivity. Furthermore, the 9 cm × 6 cm Li|Li@UiO-66-D2|LFP pouch cell exhibits excellent cycling performance with high capacity retention. An in-depth mechanism study has unveiled the significant impact of both hopping sites and nanochannel size on Li<sup>+</sup> transport, emphasizing the importance of a molecular defect strategy in enhancing the overall Li<sup>+</sup> transport performance of MOF-based QSSEs.