Cluster‐Directed Solvation Engineering for Dual‐Interface Stabilized Gel Polymer Electrolytes Enabling High‐Voltage and Fast‐Charging Lithium‐Ion Batteries

ABSTRACT Conventional LiPF 6 ‐based carbonate electrolytes undergo severe oxidative decomposition above 4.3 V, triggering uncontrolled interphase growth, transition‐metal dissolution, and accelerated capacity decay—challenges further compounded under fast‐charging and elevated‐temperature conditions. Herein, we propose a reactive‐cluster‐guided solvation reorganization strategy to reconstruct the Li + solvation structure and interfacial reaction pathways, thereby enabling dual‐interface stabilization. Highly polar MMDS spontaneously anchors PF 6 − via ion–dipole interactions, forming reactive (PF 6 − )–MMDS clusters, which redirect cathode‐side interfacial decomposition toward sulfur‐containing inorganic‐rich CEI formation, while LiDFOB reconstructs the primary Li + solvation sheath to enhance desolvation kinetics. Their coupled action yields thin, dense, and inorganic‐rich CEI/SEI layers, jointly suppressing parasitic reactions, transition‐metal dissolution, and rock‐salt surface reconstruction. With ultra‐low additive loading, LE‐HV@GPE delivers an ionic conductivity of 2.64 mS cm − 1 and a Li + transference number of 0.57. Gr‖NCM811 pouch cells achieve outstanding durability under high‐voltage (4.6 V), fast‐charging (3C), and elevated‐temperature (45°C) conditions, with full compatibility with existing manufacturing operations. This work establishes a solvation‐engineering paradigm for dual‐interface‐stabilized gel polymer electrolytes under harsh operating conditions.

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Publication Details

Journal
Angewandte Chemie
Published
2026-09-11
DOI
https://doi.org/10.1002/ange.3651820
Primary Topic
Advanced Battery Materials and Technologies
Type
article
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article

Cluster‐Directed Solvation Engineering for Dual‐Interface Stabilized Gel Polymer Electrolytes Enabling High‐Voltage and Fast‐Charging Lithium‐Ion Batteries

蘇香如, Yanjun Xie, Fangyuan Hu, Lina Zhang et al.
Angewandte Chemie
Advanced Battery Materials and Technologies
article

Cluster‐Directed Solvation Engineering for Dual‐Interface Stabilized Gel Polymer Electrolytes Enabling High‐Voltage and Fast‐Charging Lithium‐Ion Batteries

蘇香如, Yanjun Xie, Fangyuan Hu, Lina Zhang, Meng Feng, Tianpeng Zhang, Xiangyu Chen, Aohong Tang
article en

Abstract

ABSTRACT Conventional LiPF 6 ‐based carbonate electrolytes undergo severe oxidative decomposition above 4.3 V, triggering uncontrolled interphase growth, transition‐metal dissolution, and accelerated capacity decay—challenges further compounded under fast‐charging and elevated‐temperature conditions. Herein, we propose a reactive‐cluster‐guided solvation reorganization strategy to reconstruct the Li + solvation structure and interfacial reaction pathways, thereby enabling dual‐interface stabilization. Highly polar MMDS spontaneously anchors PF 6 − via ion–dipole interactions, forming reactive (PF 6 − )–MMDS clusters, which redirect cathode‐side interfacial decomposition toward sulfur‐containing inorganic‐rich CEI formation, while LiDFOB reconstructs the primary Li + solvation sheath to enhance desolvation kinetics. Their coupled action yields thin, dense, and inorganic‐rich CEI/SEI layers, jointly suppressing parasitic reactions, transition‐metal dissolution, and rock‐salt surface reconstruction. With ultra‐low additive loading, LE‐HV@GPE delivers an ionic conductivity of 2.64 mS cm − 1 and a Li + transference number of 0.57. Gr‖NCM811 pouch cells achieve outstanding durability under high‐voltage (4.6 V), fast‐charging (3C), and elevated‐temperature (45°C) conditions, with full compatibility with existing manufacturing operations. This work establishes a solvation‐engineering paradigm for dual‐interface‐stabilized gel polymer electrolytes under harsh operating conditions.

Angewandte Chemie
Dalian University of Technology (CN), Dalian University (CN), Northeast Forestry University (CN)
Openalex Percentile: Top 20%
Advanced Battery Materials and Technologies
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