覆盖层
材料科学
析氧
氢氧化物
无机化学
双功能
碱性水电解
钨酸盐
空位缺陷
分解水
氧气
电化学
可逆氢电极
歧化
电极
氯化物
氢
氧化还原
化学工程
电解
成核
动力学
法拉第效率
制氢
海水
电流密度
密度泛函理论
电催化剂
作者
Jiarui Yao,Xinyu Yang,Hongyan Xi,Wenhao Guo,Huaipeng Pang,Lin Li,Fanlu Meng
摘要
ABSTRACT Seawater electrolysis represents a sustainable frontier for green hydrogen production, yet its practical viability is severely hindered by the deleterious competition of chloride ions (Cl − ) and the detrimental accumulation of surface precipitates, both of which compromise reaction kinetics and electrode integrity. Here, we report an oxygen vacancy (O v )‐rich Cr 2 O 3 overlayer on MnCoP nanoarrays (MnCoP‐Cr 2 O 3 ‐O v ) that serves as a robust corrosion‐shield. O v ‐induced charge redistribution triggers Hard Lewis Acidity at the surface, amplifying hydroxide (OH − ) affinity to establish a localized alkaline buffer. This unique microenvironment accelerates reaction kinetics while creating a selective barrier that repels Cl − and inhibits precipitate nucleation. Consequently, the MnCoP‐Cr 2 O 3 ‐O v delivers exceptional bifunctional activity in alkaline seawater, requiring remarkably low overpotentials of 199 and 390 mV to reach an industrial current density of 500 mA cm −2 for hydrogen and oxygen evolution reactions, respectively. Furthermore, it demonstrates sustained stability (>100 h) at 200 mA cm −2 and achieves a 13% solar‐to‐hydrogen (STH) efficiency in a photovoltaic‐powered anion‐exchange membrane electrolyzer. This work provides a transformative strategy for tailoring surface Lewis acidity to construct durable, high‐performance electrodes for industrial seawater‐to‐hydrogen conversion.
科研通智能强力驱动
Strongly Powered by AbleSci AI