Dynamic Vacancy Self-stabilization Strategy on Sulfur-Doped Mn3O4 for Efficient and Durable Seawater Electrolysis

Abstract Vacancy engineering can enhance Mn-based electrocatalysts, yet in seawater, vacancies often promote Cl– adsorption, metal leaching, and stability loss. Here, we report a dynamic vacancy self-stabilization strategy for sulfur-modified Mn3O4 (S-Mn3O4-E), in which lattice-sulfur oxidation and leaching generate sulfur vacancies together with a sulfate-rich interface, while maintaining high oxygen evolution reaction (OER) activity. Theoretical calculations show that surface sulfate increases the Cl– adsorption energy and induces interfacial electron accumulation, thereby suppressing chloride adsorption, whereas sulfur vacancies regulate the electronic structure and optimize the adsorption energetics of OER intermediates. The optimized S-Mn3O4-E catalyst requires an overpotential of only 221 mV at 10 mA cm–2 in alkaline simulated seawater and sustains continuous operation for 1000 h with a low voltage decay rate of 0.033 mV h–1. This work establishes a rational defect-stabilization approach for the design of active and durable seawater OER catalysts.

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Journal
ACS Applied Energy Materials
Published
2026-10-05
DOI
https://doi.org/10.1021/acsaem.6c02311
Primary Topic
Electrocatalysts for Energy Conversion
Type
article
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article

Dynamic Vacancy Self-stabilization Strategy on Sulfur-Doped Mn3O4 for Efficient and Durable Seawater Electrolysis

Wei Cai, Jiehe Sui, Xiaohang Zheng, Liang Qiao et al.
ACS Applied Energy Materials
Electrocatalysts for Energy Conversion
article

Dynamic Vacancy Self-stabilization Strategy on Sulfur-Doped Mn3O4 for Efficient and Durable Seawater Electrolysis

Wei Cai, Jiehe Sui, Xiaohang Zheng, Liang Qiao, Yu Liang, Yangshuo Liu
article en

Abstract

Abstract Vacancy engineering can enhance Mn-based electrocatalysts, yet in seawater, vacancies often promote Cl– adsorption, metal leaching, and stability loss. Here, we report a dynamic vacancy self-stabilization strategy for sulfur-modified Mn3O4 (S-Mn3O4-E), in which lattice-sulfur oxidation and leaching generate sulfur vacancies together with a sulfate-rich interface, while maintaining high oxygen evolution reaction (OER) activity. Theoretical calculations show that surface sulfate increases the Cl– adsorption energy and induces interfacial electron accumulation, thereby suppressing chloride adsorption, whereas sulfur vacancies regulate the electronic structure and optimize the adsorption energetics of OER intermediates. The optimized S-Mn3O4-E catalyst requires an overpotential of only 221 mV at 10 mA cm–2 in alkaline simulated seawater and sustains continuous operation for 1000 h with a low voltage decay rate of 0.033 mV h–1. This work establishes a rational defect-stabilization approach for the design of active and durable seawater OER catalysts.

ACS Applied Energy Materials
Changchun University of Science and Technology (CN), Harbin Institute of Technology (CN)
Openalex Percentile: Top 32%
Electrocatalysts for Energy Conversion
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Dynamic Vacancy Self-stabilization Strategy on Sulfur-Doped Mn3O4 for Efficient and Durable Seawater Electrolysis — Wei Cai, Jiehe Sui, et al. · ACS Applied Energy Materials (2026) | TGRS Research Map | TGRS