Haipeng Wang, Li Yao, Hua Chen, Shengjun Sun, Chaoxin Yang, Zixiao Li, Shaochen Wang, Imran Shakir, Yuchun Ren, Min Wu, Xuping Sun
Seawater electrolysis is promising for renewable hydrogen production. However, the high concentration of chloride ions (Cl – ) and their derivatives (HClO/ClO – ) in seawater cause severe corrosion of the anode catalyst, posing a major challenge to the stability of the seawater electrolysis. Herein, we present the development of NiFe-layered double hydroxide nanosheets on nickel nitrate hydroxide nanoarrays supported on nickel foam. As a 3D catalyst electrode for alkaline seawater oxidation (ASO), such a hierarchical nanoarray (NiNH@NiFe LDH/NF) requires a low overpotential of 323 mV to obtain a current density of 1000 mA cm –2 and operates stably for 800 h at the same current density. In situ Raman spectroscopy analysis indicates that NiNH@NiFe LDH/NF releases nitrate ions that adsorb on the catalyst surface during the ASO process, favoring electrostatic repulsion to Cl – and enhancing the corrosion resistance of the catalyst. Furthermore, the two-electrode electrolyzer using NiNH@NiFe LDH/NF as the anode and Pt/C/NF as the cathode needs only 2.27 V to attain 500 mA cm –2 and maintains stable electrolysis for 460 h, highlighting its exceptional durability for practical seawater electrolysis applications.