Wang Xin, Jin Sheng, Shi Lu, Zhang Nan, Guo Jia, Zhang Dianqu, Liu Zhiliang
Inner Mongolia Key Laboratory of Chemistry and Physics of Rare Earth Materials, School of Chemistry and Chemical Engineering, Inner Mongolia University, Hohhot, 010021, P. R. China.
Small Methods. 2025 Mar;9(3):e2400968. doi: 10.1002/smtd.202400968. Epub 2024 Oct 1.
Solid-state electrolytes (SSEs) based on metal-organic frameworks (MOFs) are an ideal material for constructing high-performance lithium metal batteries (LMBs). However, the low ion conductivity and poor interface contact (especially at low temperatures) still seriously hinder its further application. Herein, inspired by the Na/K conduction in biology systems, a series (NH, OH, NH-(CH)-SOH)-modified MIL-53-X as SSEs is reported. These functional groups are similar to anions suspended in biological ion channels, partially repelling anions while allowing cations to be effectively transported through pore channels. Subsequently, MIL-53-X with hierarchical pore structure (H-MIL-53-X) is obtained by introducing lauric acid as a regulator, and then the effects of structural design and morphology control on its performance are explored. The conductivity of H-MIL-53-NH-SOLi with multi-level pore structure and modified by sulfonic acid groups reached 2.2 × 10 S cm at 25 °C, lithium-ion transference number of 0.78. Besides, the H-MIL-53-NH-SOLi still has an excellent conductivity of 10 S cm at -40 °C. Additionally, LiFePO/Li batteries equipped with H-MIL-53-NH-SOLi SSEs could operate stably for over 200 cycles at 0.1 C. The strategy of combining structural and morphological design of MOFs with biomimetic ion channels opens new avenues for the design of high-performance SSEs.
基于金属有机框架(MOF)的固态电解质(SSE)是构建高性能锂金属电池(LMB)的理想材料。然而,低离子电导率和较差的界面接触(尤其是在低温下)仍然严重阻碍了其进一步应用。在此,受生物系统中钠/钾传导的启发,报道了一系列(NH、OH、NH-(CH)-SOH)修饰的MIL-53-X作为SSE。这些官能团类似于悬浮在生物离子通道中的阴离子,部分排斥阴离子,同时允许阳离子通过孔道有效传输。随后,通过引入月桂酸作为调节剂获得具有分级孔结构的MIL-53-X(H-MIL-53-X),然后探索结构设计和形态控制对其性能的影响。具有多级孔结构且经磺酸基团修饰的H-MIL-53-NH-SOLi在25℃下的电导率达到2.2×10 S cm,锂离子迁移数为0.78。此外,H-MIL-53-NH-SOLi在-40℃时仍具有10 S cm的优异电导率。此外,配备H-MIL-53-NH-SOLi SSE的LiFePO/Li电池在0.1 C下可稳定运行超过200个循环。将MOF的结构和形态设计与仿生离子通道相结合的策略为高性能SSE的设计开辟了新途径。