Achieving durable alkaline seawater oxidation over NiFe layered double hydroxide via sulfur doping

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Abstract

Alkaline seawater electrolysis is promising for large-scale production of green hydrogen but the chlorine evolution reaction (CER) causes severe anode’s corrosion under high current densities. This work described the use of a sulfur-doped NiFe layered double hydroxide nanoarray on Ni foam (S-NiFe LDH/NF) synthesized through a two-step hydrothermal process as a durable catalyst for alkaline seawater oxidation. In 1 M KOH + seawater, the S-NiFe LDH/NF anode needs a low overpotential of 345 mV to afford a current density of 1000 mA·cm−2 and operates stably over 800 h. Sulfate species generated on the catalyst surface, which is evidenced by in situ Raman spectroscopy analysis, electrostatically repel Cl− and thus inhibits the CER. Furthermore, the two-electrode system using S-NiFe LDH/NF and Pt/C/NF as the anode and cathode, respectively, requires a cell voltage of 1.90 V to achieve a current density of 100 mA·cm−2 and maintains stable operation for 1000 h at 500 mA·cm−2 in alkaline seawater.

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Chen, H., Liu, M., Jiang, Z., Sun, S., Shakir, I., Hou, S., & Sun, X. (2025). Achieving durable alkaline seawater oxidation over NiFe layered double hydroxide via sulfur doping. Nano Research Energy, 4(4). https://doi.org/10.26599/NRE.2025.9120211

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