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Cation-anion synergistic interactions in ion-regulated cholesteric liquid crystal Hydroxypropyl methylcellulose coatings for lithium metal batteries

  • Zhanpeng Du
  • , Yun Huang
  • , Fengliang Wang
  • , Lei Zhang
  • , Jing Tao
  • , Jin Bao
  • , Heguo Zeng
  • , Jiajun He
  • , Huihui Li
  • , Chao Zou
  • , Chunmei Feng
  • , Bingshu Guo
  • , Xiaoyan Ma
  • , Xuepeng Zhong
  • , Bo Yu
  • , Shuhui Wang
  • , Xing Li
  • , Mingshan Wang
  • , Yuanhua Lin
  • Southwest Petroleum University China
  • Ltd.
  • Technical University of Berlin
  • National University of Singapore
  • Ltd

Research output: Contribution to journalArticlepeer-review

Abstract

The nonpolar surface of the pristine polypropylene (PP) separator is unable to restrict the reverse migration of PF6 and attract Li+, resulting in sluggish lithium ion transport kinetics and dendrite growth. Herein, three metal ions (Na+, Li+, K+) are employed to regulate cholesteric liquid crystal (CLC) structures of Hydroxypropyl methylcellulose (HPMC), and then integrate into PP separators as functional layers (PP@HPNa, PP@HPLi, and PP@HPK). The structural characterization and theoretical calculations have also demonstrated that the helical pitch of HPMC is largest under K+ regulation. Furthermore, it has been demonstrated that the PP@HPK separator has a strong affinity for PF6 and Li+, which promotes the reduction of PF6 at the electrode interface and accelerates Li+ transport. Consequently, the PP@HPNa, PP@HPLi, and PP@HPK separators exhibit high Li+ transference numbers of 0.74, 0.73, and 0.74, respectively. Notably, the highest LiF content (30.3%) in solid electrolyte interphase (SEI) is observed when using PP@HPK separators, which can be attributed to more efficient PF6 entrapment within the enlarged helical channels. When applied in full cells with LiFePO4 and LiNi0.8Co0.1Mn0.1O2 (NCM811) cathodes, the cell with PP@HPK separator demonstrates noteworthy rate capability and prolonged cycling stability, sustaining stable operation for up to 1530 cycles at 1C and 560 cycles at 0.5C, respectively. This work highlights cation-regulated cholesteric HPMC coatings as an effective strategy for designing high-performance separators for LMBs.

Original languageEnglish
Article number174853
JournalChemical Engineering Journal
Volume533
DOIs
StatePublished - 1 Apr 2026

Keywords

  • Cation-anion synergistic interactions
  • Cholesteric liquid crystal
  • Hydroxypropyl methylcellulose
  • Lithium metal battery
  • Phthalate

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