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Interphase activators for continuous Li⁺ transport in garnet-polymer composite solid electrolytes at room temperature

  • Binbin Yang
  • , Nan Chen*
  • , Yu Zhan
  • , Jun Wei
  • , Liyuan Zhao
  • , Ningning Wu
  • , Yusheng Ye
  • , Dingguo Xia
  • , Feng Wu
  • , Renjie Chen
  • *Corresponding author for this work
  • Beijing Institute of Technology
  • CAS - Institute of Chemistry
  • Peking University

Research output: Contribution to journalArticlepeer-review

Abstract

Ta-doped garnet (LLZTO) composite solid electrolytes (CSEs) with poly(vinylidene fluoride) (PVDF) coatings are attractive for solid-state Li-metal batteries (SSLMBs), but are limited by the absence of continuous, low-barrier Li⁺ percolation pathways across ceramic-polymer interfaces. Surface contaminants on LLZTO and sluggish Li⁺ coordination exchange within semicrystalline PVDF collectively disrupt interfacial continuity, resulting in high transport resistance and dendrite growth. Here, we introduce an interphase activator (IA) strategy that reconstructs the LLZTO surface by converting native Li2CO3/LiOH species while simultaneously modulating Li+ transport within PVDF. Using SbF3 as a representative IA, native Li2CO3/LiOH species are transformed into a spatially coupled Sb2O3/LiF interphase. Density functional theory calculations reveal a low Li⁺ migration barrier (0.22 eV) at the Sb2O3(220)/LiF(001) boundary, supporting enhanced interfacial transport kinetics. In the presence of ion-conducting cellulose (ICC), which provides additional oxygen-containing coordination sites, SbF3 further establishes a multicomponent noncovalent interaction environment that suppresses PVDF crystallinity and accelerates Li⁺ coordination exchange. Owing to the dual-function role of SbF3, the resulting CSEs achieve an ionic conductivity of 6.7 × 10−4 S cm−1, a Li⁺ transfer number of 0.84, and a critical current density of up to 3 mA cm−2. LiFePO4 (LFP)|Li, LiNi0.5Co0.2Mn0.3O2 (NCM523)|Li, and Li1.2Ni0.13Co0.13Mn0.54O2 (LNCMO)|Li cells exhibit stable cycling at 30 ℃. This work provides a foundation for developing IA strategies in garnet-polymer CSEs.

Original languageEnglish
JournalScience Bulletin
DOIs
Publication statusAccepted/In press - 2026

Keywords

  • Energy storage
  • Garnet
  • Poly(vinylidene fluoride)
  • Solid-state battery
  • Solid-state electrolyte

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