Citation: Xiaoyu CHEN, Fei DOU, Juan AN, Mingyuan PANG, Min YANG, Haohao ZHANG, Laixin HONG, Zhen KONG, Kongming HU, Yaqing HU, Huan PANG. MOF-based materials for fast charging batteries: Mechanistic insights, application advances, and future perspectives[J]. Chinese Journal of Inorganic Chemistry, ;2026, 42(9): 1816-1844. doi: 10.11862/CJIC.20250383 shu

MOF-based materials for fast charging batteries: Mechanistic insights, application advances, and future perspectives

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  • In the context of the global energy transition, lithium-ion batteries have emerged as the predominant energy storage technology. However, their fast-charging capabilities continue to be limited by challenges such as lithium dendrite formation, electrode volume expansion, and interfacial instability. Metal-organic frameworks (MOFs) offer promising opportunities to improve battery performance owing to their high specific surface area, tunable pore architectures, and abundant redox-active sites. Their ordered porous structure not only promotes efficient ion transport and electrolyte penetration but also enables the incorporation of numerous active sites through precise structural design. This review systematically outlines recent progress in the use of MOFs and their derivatives for fast-charging lithium-ion batteries, with a focus on their applications in electrode materials and critical battery components, as well as the associated enhancement mechanisms. It aims to provide guidance for the design and development of high-performance MOF-based materials for fast-charging batteries.
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