Literature DB >> 32412737

Molecular Design of a Highly Stable Single-Ion Conducting Polymer Gel Electrolyte.

Kewei Liu1, Sisi Jiang1, Trevor L Dzwiniel2, Hong-Keun Kim1, Zhou Yu3, Nancy L Dietz Rago1, Jae Jin Kim1, Timothy T Fister1, Jianzhong Yang1, Qian Liu1, James Gilbert1, Lei Cheng3, Venkat Srinivasan4,5, Zhengcheng Zhang1, Chen Liao1,4.   

Abstract

Single-ion conducting (SIC) polymer electrolytes with a high Li transference number (tLi+) have shown the capability to enable enhanced battery performance and safety by avoiding liquid-electrolyte leakage and suppressing Li dendrite formation. However, issues of insufficient ionic conductivity, low electrochemical stability, and poor polymer/electrode interfacial contact have greatly hindered their commercial use. Here, a Li-containing boron-centered fluorinated SIC polymer gel electrolyte (LiBFSIE) was rationally designed to achieve a high tLi+ and high electrochemical stability. Owing to the low dissociation energy of the boron-centered anion and Li+, the as-prepared LiBFSIE exhibited an ionic conductivity of 2 × 10-4 S/cm at 35 °C, which is exclusively contributed by Li ions owing to a high tLi+ of 0.93. Both simulation and experimental approaches were applied to investigate the ion diffusion and concentration gradient in the LiBFSIE and non-cross-linked dual-ion systems. Typical rectangular Li stripping/plating voltage profiles demonstrated the uniform Li deposition assisted by LiBFSIE. The interfacial contact and electrolyte infiltration were further optimized with an in situ UV-vis-initiated polymerization method together with the electrode materials. By virtue of the high electrochemical stability of LiBFSIE, the cells achieved a promising average Coulombic efficiency of 99.95% over 200 cycles, which is higher than that of liquid-electrolyte-based cells. No obvious capacity fading was observed, indicating the long-term stability of LiBFSIE for lithium metal batteries.

Entities:  

Keywords:  high transference number; in situ syntheses; lithium-ion batteries; polymer; single-ion electrolyte

Year:  2020        PMID: 32412737     DOI: 10.1021/acsami.0c03363

Source DB:  PubMed          Journal:  ACS Appl Mater Interfaces        ISSN: 1944-8244            Impact factor:   9.229


  2 in total

1.  Rational design of a topological polymeric solid electrolyte for high-performance all-solid-state alkali metal batteries.

Authors:  Yun Su; Xiaohui Rong; Ang Gao; Yuan Liu; Jianwei Li; Minglei Mao; Xingguo Qi; Guoliang Chai; Qinghua Zhang; Liumin Suo; Lin Gu; Hong Li; Xuejie Huang; Liquan Chen; Binyuan Liu; Yong-Sheng Hu
Journal:  Nat Commun       Date:  2022-07-19       Impact factor: 17.694

2.  Reversing the dendrite growth direction and eliminating the concentration polarization via an internal electric field for stable lithium metal anodes.

Authors:  Yue Ma; Feng Wu; Nan Chen; Yitian Ma; Chao Yang; Yanxin Shang; Hanxiao Liu; Li Li; Renjie Chen
Journal:  Chem Sci       Date:  2022-07-15       Impact factor: 9.969

  2 in total

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