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具有减弱锂离子溶剂化作用的超分子聚合物离子导体助力室温全固态锂金属电池。

Supramolecular Polymer Ion Conductor with Weakened Li Ion Solvation Enables Room Temperature All-Solid-State Lithium Metal Batteries.

作者信息

Zhou Hang-Yu, Ou Yu, Yan Shuai-Shuai, Xie Jin, Zhou Pan, Wan Lei, Xu Zi-Ang, Liu Feng-Xiang, Zhang Wei-Li, Xia Yin-Chun, Liu Kai

机构信息

Department of Chemical Engineering, Tsinghua University, Beijing, 100084, China.

National Academy of Safety Science and Engineering, China Academy of Safety Science and Technology, Beijing, 100012, China.

出版信息

Angew Chem Int Ed Engl. 2023 Aug 28;62(35):e202306948. doi: 10.1002/anie.202306948. Epub 2023 Jul 19.

Abstract

Improved durability, enhanced interfacial stability, and room temperature applicability are desirable properties for all-solid-state lithium metal batteries (ASSLMBs), yet these desired properties are rarely achieved simultaneously. Here, in this work, it is noticed that the huge resistance at Li metal/electrolyte interface dominantly impeded the normal cycling of ASSLMBs especially at around room temperature (<30 °C). Accordingly, a supramolecular polymer ion conductor (SPC) with "weak solvation" of Li was prepared. Benefiting from the halogen-bonding interaction between the electron-deficient iodine atom (on 1,4-diiodotetrafluorobenzene) and electron-rich oxygen atoms (on ethylene oxide), the O-Li coordination was significantly weakened. Therefore, the SPC achieves rapid Li transport with high Li transference number, and importantly, derives a unique Li O-rich SEI with low interfacial resistance on lithium metal surface, therefore enabling stable cycling of ASSLMBs even down to 10 °C. This work is a new exploration of halogen-bonding chemistry in solid polymer electrolyte and highlights the importance of "weak solvation" of Li in the solid-state electrolyte for room temperature ASSLMBs.

摘要

提高耐久性、增强界面稳定性以及具备室温适用性是全固态锂金属电池(ASSLMBs)所期望的性能,但这些理想性能很少能同时实现。在此工作中,注意到锂金属/电解质界面处的巨大电阻主要阻碍了ASSLMBs的正常循环,尤其是在室温(<30°C)左右。因此,制备了一种对锂具有“弱溶剂化”作用的超分子聚合物离子导体(SPC)。得益于缺电子碘原子(位于1,4 - 二碘四氟苯上)与富电子氧原子(位于环氧乙烷上)之间的卤键相互作用,O - Li配位显著减弱。因此,SPC实现了具有高锂迁移数的快速锂传输,重要的是,在锂金属表面形成了具有低界面电阻的独特富Li - O固体电解质界面(SEI),从而使ASSLMBs即使在低至10°C时也能稳定循环。这项工作是对固体聚合物电解质中卤键化学的新探索,并突出了锂在固态电解质中的“弱溶剂化”对室温ASSLMBs的重要性。

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