4.7 Article

Design of networked solid-state polymer as artificial interlayer and solid polymer electrolyte for lithium metal batteries

期刊

CHEMICAL ENGINEERING JOURNAL
卷 431, 期 -, 页码 -

出版社

ELSEVIER SCIENCE SA
DOI: 10.1016/j.cej.2021.133442

关键词

Artificial SEI; Solid polymer electrolytes; Dendrite-free; Homogeneous Li deposition; Lithium metal batteries

资金

  1. Ministry of Science and Technology in Taiwan [110-2623-E-006-002, 109-2923-E-006-006, 109-2622-8-006-005, 108-3116-F-006-012-CC1, 108-2622-8-006-014, 109-2634-F-006-020]
  2. Hierarchical Green-Energy Materials (Hi-GEM) Research Center and the Center of Applied Nanomedicine at National Cheng Kung University
  3. Featured Areas Research Center Program within the frame-work of the Higher Education Sprout Project by the Ministry of Educa-tion

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The major challenges in the development of lithium metal batteries (LMBs) are addressed by developing a networked solid-state polymer electrolyte (NSPE). The NSPE resolves the issues of nonuniform Li deposition and substantial variation in Li volume by regulating the Li+ transport and forming Li-F bonds at the interface. The NSPE demonstrates long cycle life and high coulombic efficiency in various LMB setups.
Major challenges in the development of lithium metal batteries (LMBs) are nonuniform Li deposition and substantial variation in Li volume, resulting in Li dendrite growth and Li consumption. A networked solid-state polymer electrolyte (NSPE) that comprises poly(ethylene oxide -co-propylene oxide) (P(EO-co-PO)) and poly (dimethylsiloxane) diglycidyl ether (PDMSDGE) chains and a lithium bis(trifluoromethanesulfonyl)imide (LiTFSI) salt is developed for resolving the Li deposition challenges. The methyl pendants on P(EO-co-PO) and PDMSDGE chains render the NSPE a low-surface-energy film for complete coverages on the high-energy Li electrode and regulating Li+ transport. The low-surface-energy characteristics induces overspreading of the highly lithiophilic C-F ends of the TFSI- anion at the Li electrode-NSPE interface, forming Li-F bonds and facilitating uniform Li deposition. The elastic PDMS chains enable the NSPE to accommodate Li volume changes. Liquid-phase Li||LiFePO4 and Cu||LiFePO4 cells with the NSPE as an artificial interface or a solid-state Li|| LiFePO4 cell with the NSPE as solid electrolyte had uniform anodic Li deposition, resulting in long cycle life and high coulombic efficiency. Our study demonstrated that (a) low surface energy to completely cover the Li anode and (b) the presence of interfacial Li -F bonds are two essential requirements for uniform Li deposition in LMBs.

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