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February 24, 2026Advanced Functional Materials2 citations

Confined Ion Regulation via Synergy of Porosity and Acidity in Molecular Sieves for Lithium‐Metal Batteries

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JZJingchao ZhangJLJianbo LiJRJiawei Ren

Key Points

  • This work aims to develop a strategy for regulating solvent structures and solid-electrolyte interphase formation in lithium-metal batteries.
  • Fabrication of modified separators using MCM-41 and ZSM-5 molecular sieves
  • Systematic variation of pore architectures and acid site densities
  • Structural and spectroscopic analyses including ATR-FTIR, Raman, and 7Li NMR
  • Density functional theory calculations to evaluate solvation effects
  • Electrochemical testing of Li||Li symmetric cells and full Li||LiFePO4 cells
  • Optimized ZSM-5 separator shows a lithium-ion transference number of up to 0.66
  • Stable cycling of Li||Li symmetric cells over 750 hours with low polarization (<0.2 V)
  • Full batteries achieved 95.7% capacity retention after 2900 cycles at 5C
  • Coulombic efficiency exceeds 99.8%
  • Dendrite-free lithium deposition and formation of a compact SEI rich in inorganic components

Abstract

ABSTRACT This work establishes a framework of synergistic solvation structure engineering via pore confinement and acidity modulation, offering a new strategy to regulate solvent structures and SEI formation for safe, long‐life, and high‐rate lithium‐metal batteries. A series of modified separators were fabricated using MCM‐41 and ZSM‐5 molecular sieves with systematically varied pore architectures and Brønsted/Lewis acid site densities. Structural and spectroscopic analyses (ATR‐FTIR, Raman, and 7 Li NMR) reveal that molecular sieves selectively filter solvent macromolecules and adsorb ions, thereby shifting lithium‐ion solvation from solvent‐separated ion pairs (SSIPs) toward contact ion pairs (CIPs) and aggregates (AGGs). Density functional theory calculations further confirm that pore size matching coupled with acidic sites weakens Li + solvation, increases local salt concentration, and releases more free Li + , enhancing the lithium‐ion transference number up to 0.66. Electrochemical testing demonstrates that Li||Li symmetric cells with the optimized small pore/high‐acidity ZSM‐5 separator exhibit stable cycling over 750 h with low polarization (<0.2 V). Full Li||LiFePO 4 cells achieve 95.7% capacity retention after 2900 cycles at 5C with a Coulombic efficiency above 99.8%. Post‐cycling characterizations confirm uniform dendrite‐free lithium deposition and the formation of a compact, inorganic‐rich SEI (LiF/Li 2 O‐dominated) facilitated by the solvation regulation.

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Cite This Study

Zhang et al. (2026) studied this question.

synapsesocial.com/papers/699d3fe6de8e28729cf64b9bhttps://doi.org/10.1002/adfm.202529567
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