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December 9, 2025Angewandte Chemie International Edition7 citations

Dynamic Li + Respiration Effect Enables Cascade Conversion of Lithium Polysulfides for Li–S Batteries

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YZYan ZhangWZWei ZhaoYNYanbin Ning

Key Points

  • To explore the effect of Li+ respiration on polysulfide conversion in lithium–sulfur batteries.
  • Proposed Li+ respiration effect for cascade catalysis
  • Utilized in situ potential-modulated TiNb2O7 as a dynamic active site
  • Tested performance of lithium–sulfur cells at varying temperatures
  • Li–S cell achieved 94.6% capacity retention after 120 cycles
  • Exhibited wide-temperature ability ranging from -30 to +60 °C
  • Demonstrated stable electrochemical-dominated catalytic performance

Abstract

Abstract High‐energy‐density lithium–sulfur batteries exhibit obvious kinetics differences involving multistep reactions, making it hard to realize constantly high‐efficient polysulfide conversion during the full charging/discharging Herein, we propose a concept of Li + ‐respiration‐effect‐induced cascade catalysis through taking full advantage of dynamic active sites from in situ potential‐modulated TiNb 2 O 7 . The Li + respiration effect activates the lattice O atom and regulates the antibonding orbitals filling, triggering an electrochemical‐dominated switchable catalytic for sequential conversion of intermediates. As a result, the Li–S cell displays a good cycling stability and wide‐temperature ability from −30 to +60 °C. A flexible pouch cell maintains a capacity retention of 94.6% after 120 cycles. Our discovery provides a fire‐new perspective in electrochemically reconstructed catalysis for wide‐temperature‐tolerant Li − S batteries.

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Cite This Study

Zhang et al. (2025) studied this question.

synapsesocial.com/papers/69401ef02d562116f28f96bchttps://doi.org/10.1002/anie.202524645
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