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◆ ACS Nano2026-03-17· In situ

In Situ Microenvironment Engineering Enables Synergistic Suppression of Protons and Chloride for Durable Seawater Oxidation

Zhengwei Cai, Yuntong Sun, Meng Yue, Donglin Zhao, Keyu Zhou, Li He, Jiawei Li, Saifei Yuan, Guangyin Fan, Qiang Yu, Jong-Min Lee, Bo Tang

原始摘要(英文原文)· Original abstract
Direct seawater electrolysis powered by coastal/offshore renewable energy offers a sustainable route for hydrogen production, but its industrial application is hindered by local acidification and chloride-induced anodic catalyst deactivation and corrosion under industrial-level current densities ( j ). During alkaline seawater oxidation (ASO) at high j, rapid generation and accumulation of H + decreases the local pH, which, in conjunction with reactive chlorine species, synergistically suppresses catalytic activity and accelerates electrode corrosion. Herein, we report for the first time a NiS 2 /Cr 2 S 3 /NF catalyst, leveraging the synergistic interaction between in situ SO 4 2– formation at S sites and hydroxide enrichment at Cr sites, enabling stable ASO for over 3000 h at 1 A cm –2 and over 800 h at 2 A cm –2 . Furthermore, when integrated into the anode of a practical anion exchange membrane water electrolysis device, it demonstrates long-term durability exceeding 600 h at 1 A cm –2 . Mechanistic studies reveal that SO 4 2– generated at sulfur sites electrostatically repels Cl –, while OH – accumulation at chromium sites neutralizes H +, thus stabilizing a highly negative, alkaline anodic microenvironment. This microenvironment effectively suppresses chlorine evolution and local acidification, leading to robust ASO under high j . This work presents a viable strategy for achieving efficient and stable ASO under high j, contributing to the development of large-scale direct seawater electrolysis driven by renewable energy.
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In Situ Microenvironment Engineering Enables Synergistic Suppression of Protons and Chloride for Durable Seawater Oxidation — 科研速览 Science Skim