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March 14, 2026Advanced Functional Materials0 citations

Interfacial Molecular Welding via Passivation‐Triggered Fluoropolymerization: Boosting Li + Conduction and Stabilizing Dual Electrode Interfaces for Solid‐State Lithium Metal Batteries

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HLHaojian LianXLXingan LiaoYZYangqian Zhang

Key Points

  • The study aims to enhance ionic conductivity in solid-state lithium metal batteries by improving interfacial bonding.
  • Utilized passivation-triggered ring-opening polymerization to create fluorinated oligomers.
  • Examined the effects of molecular cross-linkers on interfaces between garnet fillers and polymers.
  • Measured ionic conductivity and cycling stability of the battery system.
  • Achieved an ionic conductivity of 1.43 × 10 −3 S cm −1.
  • Demonstrated stable performance over 200 cycles with a LiCoO 2 cathode.
  • Maintained symmetric Li cell cycling for 1200 hours with minimal potential fluctuation.

Abstract

ABSTRACT Lithium garnet‐reinforced composite polymer electrolytes are particularly promising for high‐voltage solid‐state lithium metal batteries. However, the uncontrollable surface contaminant formation on garnets critically degrades the interfacial contact with the polymer matrix, impedes Li + pathways, and limits the interface compatibility with both the cathode and lithium anode. Here, we exploit this passivation layer to initiate ring‐opening polymerization of fluorine‐containing organics, in situ generating fluorinated oligomers that function as molecular cross‐linkers between garnet fillers and polymer matrix. This precisely engineered interface creates homogeneous, high‐flux Li + migration channels throughout the electrolyte, yielding a high ionic conductivity of 1.43 × 10 −3 S cm −1 . The presence of abundant fluorine synergistically stabilizes electrodes by fostering LiF‐dominated layers on high‐voltage cathodes and Li metal anodes. The cell matching with the LiCoO 2 cathode can stably work for 200 cycles, and the symmetric Li cell can cycle for 1200 h without obvious potential fluctuation. This work presents a waste‐to‐value strategy that is expandable for developing a series of lithium garnet‐enhanced composite electrolytes for high‐voltage lithium‐metal batteries.

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Cite This Study

Lian et al. (2026) studied this question.

synapsesocial.com/papers/69b4b9db18185d8a39801fa8https://doi.org/10.1002/adfm.202523355
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