Angewandte Chemie International Edition · 2023 · 90 citations · 54 references
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<sup>+</sup> 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<sup>+</sup> coordination was significantly weakened. Therefore, the SPC achieves rapid Li<sup>+</sup> transport with high Li<sup>+</sup> transference number, and importantly, derives a unique Li<sub>2</sub> 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<sup>+</sup> in the solid-state electrolyte for room temperature ASSLMBs.
54
Polymer Electrolytes for Lithium-Based Batteries: Advances and Prospects
Dong Zhou, Devaraj Shanmukaraj, Anastasia Tkacheva et al. · Chem · 2019 · 1.4K citations · Full text
Ionic conductivity in crystalline polymer electrolytes
Zlatka Gadjourova, Yuri G. Andreev, D P Tunstall et al. · Nature · 2001 · 1K citations
Tailoring electrolyte solvation for Li metal batteries cycled at ultra-low temperature
John Holoubek, Haodong Liu, Zhaohui Wu et al. · Nature Energy · 2021 · 791 citations · Full text