过电位
氧阴离子
无机化学
析氧
催化作用
海水
电解
电化学
化学
阳极
氯化物
硝酸盐
碱性水电解
过渡金属
化学工程
材料科学
氧化物
氧气
氧化还原
电极
腐蚀
铬酸盐转化膜
碱土金属
降级(电信)
金属
硝酸镉
作者
Huangcong Tang,Jieting Ding,Zemin Feng,Jiarui Ding,Shunchun Yao,Haofan Wang,Kui Shen,Liyu Chen,Yingwei Li
摘要
ABSTRACT Chloride ions (Cl − )‐induced corrosion severely limits the practical implementation of direct seawater electrolysis. Although oxyanion incorporation can mitigate Cl − poisoning, existing approaches offer limited control over oxyanion generation and retention during catalyst reconstruction. Herein, we report a MOF‐based ligand‐engineering strategy that enables defined oxyanion incorporation into reconstructed metal oxyhydroxides for active and durable seawater electrolysis. Nitro‐ (NO 2 ) functionalized ligands are incorporated into a NiFe‐MOF precursor, where the NO 2 group undergo a simple and direct oxidation to nitrate (NO 3 − ) during electrochemical reconstruction, enabling well‐defined NO 3 − regulation of the reconstructed γ‐NiFeOOH phase. The anchored NO 3 − not only forms a robust Cl − ‐repelling interface but also activates lattice oxygen to drive a mechanistic transition from an adsorbate evolution mechanism to a more efficient lattice‐oxygen‐mediated pathway. The designed catalyst achieves excellent oxygen evolution reaction performance in alkaline seawater, requiring an overpotential of only 230 mV to reach a current density of 500 mA cm −2 , outperforming its NO 3 − ‐free counterpart. It also exhibits high durability, operating for over 4000 h at 1.5 A cm −2 with an ultralow degradation rate of 1.8 µV h −1 . Furthermore, a kilowatt‐level alkaline seawater electrolyzer equipped with the designed electrode operates stably for over 1100 h under industrially relevant conditions.
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