Constructing Dual Silsesquioxane-Crosslinked Network Channels in Hybrid Polymer Membranes for Dendrite-Free and Durable High-Power LMBs

Abstract

The practical implementation of high-energy-density lithium metal batteries remains a challenging task due to the instability of conventional solid electrolyte interphase (SEI) layers. To satisfy interfacial performance and ionic conductivities of non-dendritic lithium electrodeposition, battery membranes can be considered a paradigm shift for lithium anode protection. Here, we present an effective membrane engineering strategy that leverages the integrated structure of dual silsesquioxane-crosslinked polymer networks on nanofibers for in-situ controlled manipulation of SEI chemistry. The functional hybrid polymer membranes (FHMs), which feature a hierarchical porous architecture, an abundance of lipophilic groups, and a high modulus, exhibit high Li-ion conductivity (~2.56 mS cm-1), near-single ion conduction (~0.93), and remarkable electrochemical stability over 5.7 V. Furthermore, the FHM-based cells displayed an impressive coulombic efficiency of over 91% in Cu||Li cells at 10 mA cm-2, remarkable cyclability exceeding 2200 h in Li||Li symmetric cells, and noteworthy capacity retention(~83%) after 200 cycles at an ultra-high 10C rate. This study offers valuable insights from the perspective of polymer electrolyte engineering to form robust non-dendritic lithium-supported SEIs and achieve durable application of high-performance batteries.

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Article information

Article type
Paper
Submitted
16 Feb 2025
Accepted
11 Apr 2025
First published
14 Apr 2025

J. Mater. Chem. A, 2025, Accepted Manuscript

Constructing Dual Silsesquioxane-Crosslinked Network Channels in Hybrid Polymer Membranes for Dendrite-Free and Durable High-Power LMBs

L. Liu, X. Gui, D. Li, Q. lin, T. Zhang, L. Sun, Z. Wang, X. Song, X. Sun, Y. Xue, C. Luo and K. Xu, J. Mater. Chem. A, 2025, Accepted Manuscript , DOI: 10.1039/D5TA01266J

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