海水
电解
析氧
氢氧化物
氯
电解水
催化作用
材料科学
无机化学
分解水
化学工程
碱性水电解
可持续能源
离子交换
膜
电催化剂
氢
工作(物理)
氧气
电化学
密度泛函理论
化学稳定性
储能
法拉第效率
电极
制氢
动力学
电流密度
离子
作者
Jae Kwan Lee,J. Kim,Byeong‐Gwan Cho,Inhui Hwang,Woo Seok Cheon,Jiheon Lim,Kiryong Hong,Hong Gi Kim,Jong Hwan Lim,Sooheyong Lee,Jong Hun Kang,Min Sang Kwon,Ki Chang Kwon,Seong-Jin Park,Ho Won Jang
摘要
ABSTRACT Seawater electrolysis has emerged as a promising pathway for sustainable hydrogen production. However, practical seawater electrolysis is hindered by Cl − ‐induced site blocking, corrosion, and competitive chlorine evolution. Thus electrocatalysts must achieve high OER currents below the chlorine evolution onset while maintaining structural and chemical stability in Cl − ‐rich environments. Although noble‐metal‐free NiFe–layered double hydroxide (LDH) is a promising catalyst for oxygen evolution reaction (OER), its practical application in seawater electrolysis remains limited due to its relatively higher overpotentials and Cl − ‐vulnerability. To overcome this challenge, we report a (Mo–S) 1 @NiFe–LDH, which incorporates atomically dispersed Mo–S sites within the NiFe–LDH lattice. Spectroscopic analyses confirm that the unique Mo–S coordination induces structural relaxation, lowering the energetic barrier for the transition to active (oxy)hydroxide (NiFeOOH) phase. This facilitated reconstruction enhances reaction kinetics at reduced potential. In a practical seawater anion exchange membrane water electrolyzer (AEMWE), (Mo–S) 1 @NiFe–LDH exhibits an industrial‐level current density of 5.29 A cm −2 at 1.8 V. Furthermore, the system demonstrates stable operation for 425 h under alkalized seawater conditions. This work establishes a design principle for seawater‐resilient catalysts by integrating atomic‐scale coordination with high‐current‐density stability for large‐scale energy conversion.
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