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分层离子输运通道在基于 MOF 的准固态电解质中激发的非凡离子电导率。

Extraordinary Ionic Conductivity Excited by Hierarchical Ion-Transport Pathways in MOF-Based Quasi-Solid Electrolytes.

机构信息

School of Materials Science and Engineering, Zhejiang University, Hangzhou, 310027, China.

ZJU-Hangzhou Global Scientific and Technological Innovation Center, Zhejiang University, Hangzhou, 311215, China.

出版信息

Adv Mater. 2023 Jun;35(26):e2300888. doi: 10.1002/adma.202300888. Epub 2023 May 12.

Abstract

Liquid-electrolyte-laden metal-organic frameworks (LE-laden MOFs) are promising quasi-solid electrolytes (QSEs) for metal-anode batteries. To achieve a high ionic conductivity, considerable efforts have been devoted to designing continuous and compact LE-laden MOF layers. Surprisingly, in this work, an extraordinarily high ionic conductivity (1.02 mS cm ) is observed in an LE-laden MOF electrolyte with abundant interstices and cracks. Herein, various macroscopic and mesoscopic pore structures of Li-LE-laden HKUST-1 QSEs are prepared via morphology control and different cold-pressing procedures. Thereinto, Li-LE-laden cuboctahedron HKUST-1 prepared under 150 MPa cold-pressing with an optimal hierarchical pore structure (Li-Cuboct-H) exhibits the highest ambient ionic conductivity (1.02 mS cm ). It is found that interstices and cracks in electrolytes construct a set of interconnected Li-LE networks with innate MOF channels and facilitate Li transfer in the hybrid ion-transport pathways. The Li/LiFePO cells based on Li-Cuboct-H deliver a splendid capacity retention of 93% over 210 cycles at 1 C. Meanwhile, the high ionic conductivities (higher than 10 S cm ) can be achieved in different ion conductor systems (Na, Mg, and Al) under the same guideline. This work redefines the understanding of ion transport in MOF-based QSEs and breaks the bottleneck of MOF-based QSEs.

摘要

负载液态电解质的金属有机骨架 (LE-laden MOFs) 是一种很有前途的准固态电解质 (QSE),可用于金属阳极电池。为了实现高离子电导率,人们致力于设计连续而紧凑的 LE-laden MOF 层。令人惊讶的是,在这项工作中,在具有丰富空隙和裂缝的 LE-laden MOF 电解质中观察到了异常高的离子电导率 (1.02 mS cm )。在此,通过形貌控制和不同的冷压工艺制备了具有各种宏观和介观孔结构的 Li-LE-laden HKUST-1 QSEs。其中,在 150 MPa 冷压下制备的具有最佳分级孔结构的负载 Li 和 LE 的八面体 HKUST-1(Li-Cuboct-H)表现出最高的环境离子电导率(1.02 mS cm )。研究发现,电解质中的空隙和裂缝构建了一组相互连接的 Li-LE 网络,具有固有 MOF 通道,有利于在混合离子传输途径中传输 Li。基于 Li-Cuboct-H 的 Li/LiFePO 电池在 1 C 下经过 210 次循环后,容量保持率高达 93%。同时,在相同的指导下,在不同的离子导体系统(Na、Mg 和 Al)中可以实现高于 10 S cm 的高离子电导率。这项工作重新定义了对 MOF 基 QSE 中离子输运的理解,并打破了 MOF 基 QSE 的瓶颈。

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