ABSTRACT To achieve sustainable hydrogen production through seawater electrolysis, it is essential to develop efficient and stable electrocatalysts for the oxygen evolution reaction (OER). Herein, we develop a high‐performance phosphate‐modified nickel‐iron catalyst directly on iron foam (FeNiPi/FF) via a facile and scalable two‐step strategy, which integrates anodic electrodeposition and subsequent in situ soaking. Systematic structural characterization reveals that the optimized catalyst possesses a unique hierarchical nanoflower architecture, which confers a substantially increased electrochemical surface area. Furthermore, it is enriched with electrochemically active high‐valence Ni 3+ /Fe 3+ species and stabilized by strongly incorporated phosphate anions. This synergistic configuration enables the FeNiPi/FF electrode to demonstrate superior OER activity and robust durability in alkaline water and seawater. It requires low overpotentials of merely 320 and 346 mV to deliver a high current density of 500 mA cm − 2 in alkaline water and alkaline seawater electrolytes, respectively, and maintains superb long‐term operational stability. This work not only provides a practical and effective pathway for designing non‐precious metal catalysts with enhanced activity and corrosion resistance but also advances the development of efficient alkaline water and alkaline seawater splitting systems for a green hydrogen economy.
Bai et al. (Wed,) studied this question.
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