Neighboring Copper Atoms Enhance Valence‐Adaptive Catalysis of Cobalt for Boosted Polysulfide Redox Kinetics

ABSTRACT Reversible polysulfide redox kinetics critically govern the capacity, rate capability, and cycle life of sodium–sulfur (Na–S) batteries. Here we report a single‐atom catalyst featuring S‐bridged Cu–Co dual sites anchored on N‐doped Ti 3 C 2 S 2 MXene. The sulfur cathode delivers a high specific capacity of 573.8 mAh g −1 at 5.0 A g −1 with an ultralow capacity decay of ≈0.0037% per cycle over 15,000 cycles. Experimental and DFT calculations reveal that Co serves as the valence‑adaptive catalytic center, donating electrons to sulfur species during discharge and accepting them during charge, corresponding to the Co 1.32+ ↔ Co 1.58+ valence transition. Neighboring Cu atoms amplify this behavior by modulating the electronic structure of Co, as evidenced by a larger Co valence fluctuation in CuCo‑NSM (Δ = 0.26) than in Co‑NSM (Δ = 0.18). Additionally, the Cu–Co dual sites accelerate sodium‐ion diffusion and facilitate the reverse polysulfide conversion (Na 2 S→Na 2 S 2 ) during charge. The synergistic valence‑adaptive catalysis arising from the Cu–Co dual‑metal sites significantly promotes the kinetics of polysulfide conversion, offering a feasible atomic‐level design strategy for high‐performance metal–sulfur batteries.

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Publication Details

Journal
Advanced Functional Materials
Published
2026-09-01
DOI
https://doi.org/10.1002/adfm.78101
Primary Topic
Advanced Battery Materials and Technologies
Type
article
Field-Weighted Citation Impact
0.00

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article

Neighboring Copper Atoms Enhance Valence‐Adaptive Catalysis of Cobalt for Boosted Polysulfide Redox Kinetics

Zhimei Sun, Wei Zhou, Jianbo Wu, Lin Guo et al.
Advanced Functional Materials
Advanced Battery Materials and Technologies
article

Neighboring Copper Atoms Enhance Valence‐Adaptive Catalysis of Cobalt for Boosted Polysulfide Redox Kinetics

Zhimei Sun, Wei Zhou, Jianbo Wu, Lin Guo, Ronghui Liu, Zhen Fang, Ya Gao, Yuxuan Gao, Hongfei Gu
article en

Abstract

ABSTRACT Reversible polysulfide redox kinetics critically govern the capacity, rate capability, and cycle life of sodium–sulfur (Na–S) batteries. Here we report a single‐atom catalyst featuring S‐bridged Cu–Co dual sites anchored on N‐doped Ti 3 C 2 S 2 MXene. The sulfur cathode delivers a high specific capacity of 573.8 mAh g −1 at 5.0 A g −1 with an ultralow capacity decay of ≈0.0037% per cycle over 15,000 cycles. Experimental and DFT calculations reveal that Co serves as the valence‑adaptive catalytic center, donating electrons to sulfur species during discharge and accepting them during charge, corresponding to the Co 1.32+ ↔ Co 1.58+ valence transition. Neighboring Cu atoms amplify this behavior by modulating the electronic structure of Co, as evidenced by a larger Co valence fluctuation in CuCo‑NSM (Δ = 0.26) than in Co‑NSM (Δ = 0.18). Additionally, the Cu–Co dual sites accelerate sodium‐ion diffusion and facilitate the reverse polysulfide conversion (Na 2 S→Na 2 S 2 ) during charge. The synergistic valence‑adaptive catalysis arising from the Cu–Co dual‑metal sites significantly promotes the kinetics of polysulfide conversion, offering a feasible atomic‐level design strategy for high‐performance metal–sulfur batteries.

Advanced Functional Materials
Alliance Bioversity International - CIAT (IT), Shanghai Jiao Tong University (CN), Beihang University (CN), University of Hong Kong (HK)
Salt Science Research Foundation, National Key Research and Development Program of China, Fundamental Research Funds for the Central Universities
Responsible consumption and production
Openalex Percentile: Top 20%
Advanced Battery Materials and Technologies
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