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Engineering polysulfide redox microenvironments in Lithium–Sulfur batteries: From active sites to cell architecture

delete2026-08-06
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PRE
AI
Y
Yaping Yan
X
Xixi Zhou
M
Mengting Zhao
Q
Qicai Wu
Y
Yongle Li
X
Xinrun Du
X
Xiaohong Shang *
J
Jianping Chen *
陈宇杰 (Yujie Chen)
Z
Zixu Sun *
刘欢 cover
刘欢 (Hung-En Liu) *
DOI:10.1016/j.ccr.2026.218379delete
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Abstract

Abstract

En 中文
• Classify LSB materials based on their three functions of conductivity, adsorption, and catalysis, and provide a detailed explanation. • Examines recent research advances in LSB from the perspectives of both structural design and performance enhancement. • Provides an in-depth exploration of advanced material strategies to suppress polysulfide shuttling, volume expansion in sulfur cathodes, and lithium dendrite growth. • Elucidates the synergistic mechanisms by which structural optimization and surface modification enhance battery energy density, cycling stability, and rate performance.
Keywords:
LSB
Sulfur redox kinetics
Separator modification
Electrolyte optimization
Shuttle effect

Journal

Coordination Chemistry Reviews cover
Coordination Chemistry Reviews
IF:
23.5
Papers:
8.9K
Citations:
7.3W

Organization

H
henan university of engineering
Scholars:
260
Papers: 115
Citations: 0
H
henan university
Scholars:
2.2W
Papers: 1.3W
Citations: 20
U
university of shanghai for science and technology
Scholars:
5.1K
Papers: 2.1K
Citations: 4
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