High‐Energy Aqueous Sulfur Battery Chemistry

X Xiaoyu Yu T Tengsheng Zhang (Laboratory of Advanced Materials, Aqueous Battery Center, Shanghai Key Laboratory of Molecular Catalysis and Innovative Materials, Electron Microscope Center of Fudan University, Shanghai Wusong Laboratory of Materials Science, and Faculty of Chemistry and Materials) Y Yutong Feng (Laboratory of Advanced Materials, Aqueous Battery Center, College of Smart Materials and Future Energy) X Xinran Li J Junwei Zhang J Jiachao Mi (Laboratory of Advanced Materials Aqueous Battery Center Shanghai Key Laboratory of Molecular Catalysis and Innovative Materials Collaborative Innovation Center of Chemistry for Energy Materials Shanghai Wusong Laboratory of Materials Science College of Smart Materials and Future Energy Fudan University Shanghai 200433 P. R. China) C Chao Ye (School of Chemical Engineering) W Wei Li D Dongyuan Zhao (Laboratory of Advanced Materials, Shanghai Key Laboratory of Molecular Catalysis and Innovative Materials, State Key Laboratory of Porous Materials for Separation and Conversion, Fudan University, 220 Handan, Shanghai 200433, P. R. China) D Dongliang Chao (Laboratory of Advanced Materials, Aqueous Battery Center, College of Smart Materials and Future Energy)

Abstract

AbstractAqueous sulfur batteries (ASBs) have garnered ever‐increasing interest due to their remarkable safety, high specific capacity, and cost‐effectiveness. However, the present understanding of sulfur chemistry in water relies on experience derived from conventional organic electrolyte‐based sulfur batteries (OSBs). The absence of a comprehensive review fundamentally distinguishing the sulfur chemistry in aqueous electrolytes from the organic counterparts leads to an insufficient understanding of ASBs, which impedes their advancement. Here, this perspective delves into the intricate aqueous‐sulfur‐related chemistry, offering a comprehensive analysis of the redox pathways, thermodynamic processes, and kinetic behaviors that are central to the operation of ASBs. All reactions are classified into three categories based on the solubility product constant (Ksp): solid−solid (s−s), solid−liquid (s−l), and liquid−liquid (l−l). Rather than simply compiling recent progress, a critical appraisal of the recent advances in different ASBs is presented, with special emphasis on the challenges and underlying mechanisms of various strategies. Potential interactions and integrated strategies in different ASBs are established. Lastly, this perspective synthesizes current concerns and forward‐looking insights for developing next‐generation ASBs with improved durability and energy efficiency.

Article Details

Volume / Issue Vol. 1, Issue 1
Published August 25, 2025
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (10)

X

Xiaoyu Yu

T

Tengsheng Zhang

Laboratory of Advanced Materials, Aqueous Battery Center, Shanghai Key Laboratory of Molecular Catalysis and Innovative Materials, Electron Microscope Center of Fudan University, Shanghai Wusong Laboratory of Materials Science, and Faculty of Chemistry and Materials

Y

Yutong Feng

Laboratory of Advanced Materials, Aqueous Battery Center, College of Smart Materials and Future Energy

X

Xinran Li

J

Junwei Zhang

J

Jiachao Mi

Laboratory of Advanced Materials Aqueous Battery Center Shanghai Key Laboratory of Molecular Catalysis and Innovative Materials Collaborative Innovation Center of Chemistry for Energy Materials Shanghai Wusong Laboratory of Materials Science College of Smart Materials and Future Energy Fudan University Shanghai 200433 P. R. China

C

Chao Ye

School of Chemical Engineering

W

Wei Li

D

Dongyuan Zhao

Laboratory of Advanced Materials, Shanghai Key Laboratory of Molecular Catalysis and Innovative Materials, State Key Laboratory of Porous Materials for Separation and Conversion, Fudan University, 220 Handan, Shanghai 200433, P. R. China

D

Dongliang Chao

Laboratory of Advanced Materials, Aqueous Battery Center, College of Smart Materials and Future Energy