Vacancy‐Mediated Sulfur Exchange Between Catalysts and Polysulfides Accelerates Sulfur Redox Kinetics in Lithium‐Sulfur Batteries

ABSTRACT Metal sulfides are promising sulfur electrocatalysts for lithium‐sulfur (Li–S) batteries, yet their rational design is limited by an incomplete understanding of interfacial sulfur redox processes. Here, we reveal a vacancy‐mediated sulfur‐exchange mechanism that accelerates sulfur redox kinetics. Using Bi 2 S 3 as a model catalyst, 34 S isotope‐labeling reveals dynamic sulfur exchange between external polysulfides and vacancy‐associated Bi–S lattice environments during cycling. Accessible sulfur vacancies act as exchange centers, enabling sulfur incorporation, migration, and local reconstruction. By tuning vacancy concentration, we establish a direct correlation between sulfur‐vacancy density, sulfur‐exchange extent, and catalytic sulfur conversion. Vacancy‐rich Bi 2 S 3 nearly doubles the electrochemically accessible interfacial area, with double‐layer capacitance increasing from 1.04 to 2.18 mF cm −2 , and raises sulfur exchange from 0.71% to 1.05%. Consequently, Li 2 S nucleation and precipitation are accelerated; the apparent Li 2 S formation barrier decreases from 0.352 to 0.179 eV, and polarization and impedance growth are suppressed. A 2.5 Ah Li–S pouch cell delivers an energy density of ∼504 Wh kg −1 . These findings identify vacancy‐mediated sulfur exchange as a mechanistic basis for designing high‐performance metal sulfide catalysts for practical sulfur batteries.

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Publication Details

Journal
Advanced Materials
Published
2026-10-04
DOI
https://doi.org/10.1002/adma.75210
Primary Topic
Advanced Battery Materials and Technologies
Type
article
Field-Weighted Citation Impact
0.00

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article

Vacancy‐Mediated Sulfur Exchange Between Catalysts and Polysulfides Accelerates Sulfur Redox Kinetics in Lithium‐Sulfur Batteries

Chuannan Geng, Zhonghao Hu, Ahmed G. Attallah, Wei Zhong Lv et al.
Advanced Materials
Advanced Battery Materials and Technologies
article

Vacancy‐Mediated Sulfur Exchange Between Catalysts and Polysulfides Accelerates Sulfur Redox Kinetics in Lithium‐Sulfur Batteries

Chuannan Geng, Zhonghao Hu, Ahmed G. Attallah, Wei Zhong Lv, Jiwei Shi, Ziying Wu, Jun Biao Lu, Yufei Zhao, Zhiwei Hu, Xudong Li, Yun Cao, Jiaqi Lan, Jiayi Li, Ziyue Zhao, Mengting Zheng, Junjie Wang
article en

Abstract

ABSTRACT Metal sulfides are promising sulfur electrocatalysts for lithium‐sulfur (Li–S) batteries, yet their rational design is limited by an incomplete understanding of interfacial sulfur redox processes. Here, we reveal a vacancy‐mediated sulfur‐exchange mechanism that accelerates sulfur redox kinetics. Using Bi 2 S 3 as a model catalyst, 34 S isotope‐labeling reveals dynamic sulfur exchange between external polysulfides and vacancy‐associated Bi–S lattice environments during cycling. Accessible sulfur vacancies act as exchange centers, enabling sulfur incorporation, migration, and local reconstruction. By tuning vacancy concentration, we establish a direct correlation between sulfur‐vacancy density, sulfur‐exchange extent, and catalytic sulfur conversion. Vacancy‐rich Bi 2 S 3 nearly doubles the electrochemically accessible interfacial area, with double‐layer capacitance increasing from 1.04 to 2.18 mF cm −2 , and raises sulfur exchange from 0.71% to 1.05%. Consequently, Li 2 S nucleation and precipitation are accelerated; the apparent Li 2 S formation barrier decreases from 0.352 to 0.179 eV, and polarization and impedance growth are suppressed. A 2.5 Ah Li–S pouch cell delivers an energy density of ∼504 Wh kg −1 . These findings identify vacancy‐mediated sulfur exchange as a mechanistic basis for designing high‐performance metal sulfide catalysts for practical sulfur batteries.

Advanced Materials
South China Normal University (CN), Helmholtz-Zentrum Dresden-Rossendorf (DE), Lithium Power (United States) (US), Tsinghua Shenzhen International Graduate School (CN), Zhejiang University (CN), Tsinghua University (CN)
National Natural Science Foundation of China, China Postdoctoral Science Foundation, Natural Science Foundation of Tianjin City, Shenzhen Science and Technology Innovation Program
Affordable and clean energy
Openalex Percentile: Top 22%
Advanced Battery Materials and Technologies
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