Melt‐Intercalated Montmorillonite Composite Electrolytes Enabling Interlayer‐Interface Dual Conduction Networks for Stable Solid‐State Lithium Metal Batteries

ABSTRACT The sluggish ion transport kinetics within solid‐state electrolytes and the consequent heterogeneous lithium deposition represent core bottlenecks impeding high‐energy‐density lithium metal batteries. Such uneven deposition originates from restricted ion transport networks and fragile contact at electrode/electrolyte interfaces. Constructing long‐range continuous fast ion transport networks effectively regulates microscopic ion flux, enabling uniform lithium plating/stripping. Herein, we propose an innovative solvent‐free melt coordination intercalation strategy, combined with electrospinning and in‐situ thermal polymerization, to construct composite solid electrolytes featuring dual‐ion conduction channels using 2D layered montmorillonite as the functional skeleton. The highly conductive interlayer confinement transport channels of montmorillonite and the continuous montmorillonite/polymer amorphous interfaces synergistically constitute interconnected “interlayer‐interface” dual‐conduction networks for Li + . Consequently, the resulting electrolyte exhibits a high room‐temperature ionic conductivity of 1.6 mS·cm −1 and an outstanding Li + transference number of 0.68. Meanwhile, uniform ion transmission across the electrode/electrolyte interface is guaranteed. The Li||Li symmetric cells demonstrate long stable cycling of over 6000 h at 0.1 ‍mA·cm −1 . Furthermore, LiFePO 4 ||Li full cells retain ∼70% of their initial capacity after 3000 cycles at 2 C rate. This work simultaneously achieves efficient ion transport and enhanced interfacial stability, providing a promising avenue for high‐performance solid‐state lithium metal batteries.

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Publication Details

Journal
Advanced Functional Materials
Published
2026-09-11
DOI
https://doi.org/10.1002/adfm.78260
Primary Topic
Advanced Battery Materials and Technologies
Type
article
Field-Weighted Citation Impact
0.00

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article

Melt‐Intercalated Montmorillonite Composite Electrolytes Enabling Interlayer‐Interface Dual Conduction Networks for Stable Solid‐State Lithium Metal Batteries

Hao Liu, Yin Song, Zhangkuo Han, Di Jiang et al.
Advanced Functional Materials
Advanced Battery Materials and Technologies
article

Melt‐Intercalated Montmorillonite Composite Electrolytes Enabling Interlayer‐Interface Dual Conduction Networks for Stable Solid‐State Lithium Metal Batteries

Hao Liu, Yin Song, Zhangkuo Han, Di Jiang, Libing Liao, Xin Liu, Xuefeng Wang, Shusen Zhou, Jiahan Zheng, Bowen Liu, Yuyang He, Jiayi Zhang
article en

Abstract

ABSTRACT The sluggish ion transport kinetics within solid‐state electrolytes and the consequent heterogeneous lithium deposition represent core bottlenecks impeding high‐energy‐density lithium metal batteries. Such uneven deposition originates from restricted ion transport networks and fragile contact at electrode/electrolyte interfaces. Constructing long‐range continuous fast ion transport networks effectively regulates microscopic ion flux, enabling uniform lithium plating/stripping. Herein, we propose an innovative solvent‐free melt coordination intercalation strategy, combined with electrospinning and in‐situ thermal polymerization, to construct composite solid electrolytes featuring dual‐ion conduction channels using 2D layered montmorillonite as the functional skeleton. The highly conductive interlayer confinement transport channels of montmorillonite and the continuous montmorillonite/polymer amorphous interfaces synergistically constitute interconnected “interlayer‐interface” dual‐conduction networks for Li + . Consequently, the resulting electrolyte exhibits a high room‐temperature ionic conductivity of 1.6 mS·cm −1 and an outstanding Li + transference number of 0.68. Meanwhile, uniform ion transmission across the electrode/electrolyte interface is guaranteed. The Li||Li symmetric cells demonstrate long stable cycling of over 6000 h at 0.1 ‍mA·cm −1 . Furthermore, LiFePO 4 ||Li full cells retain ∼70% of their initial capacity after 3000 cycles at 2 C rate. This work simultaneously achieves efficient ion transport and enhanced interfacial stability, providing a promising avenue for high‐performance solid‐state lithium metal batteries.

Advanced Functional Materials
Ministry of Natural Resources (CN), China University of Geosciences (Beijing) (CN), FZU ‒ Institute of Physics of the Academy of Sciences of the Czech Republic (CZ), National Laboratory for Superconductivity (CN)
National Natural Science Foundation of China
Openalex Percentile: Top 20%
Advanced Battery Materials and Technologies
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