Ultrafast in situ-formed FeOOH ultrathin overlayers on NiFe-LDH surfaces enable highly durable alkaline seawater oxidation

Abstract

This work presents a simple one-step strategy for in situ engineering of NiFe-layered double hydroxide (NiFe-LDH) surfaces into an ultrathin FeOOH overlayer by N2-plasma irradiation. The FeOOH phase promotes the formation and stability of NiOOH and inhibits Cl ions from entering the active phase. Theoretical calculations show that NiFe-LDH/FeOOH has a superior adsorption energy toward OH than toward Cl, reducing the Cl level near the catalyst surface. NiFe-LDH/FeOOH exhibits better OER activity and selectivity than NiFe-LDH in alkaline seawater electrolytes, indicating the critical role of the FeOOH film. The NiFe-LDH/FeOOH electrode can operate stably for 195 hours at 250 mA cm−2 in 1 M KOH + 2.5 M NaCl and for 200 hours even under industrial conditions (6 M KOH + seawater, 60 °C), demonstrating remarkable durability. In alkaline natural seawater, an anion exchange membrane electrode assembly electrolyzer using NiFe-LDH/FeOOH as the anode delivers a high current of 500 mA cm−2 at 2.114 V and robust durability with stable operation for over 100 hours at 250 mA cm−2. This study provides a feasible avenue to prepare high-performance OER catalysts for alkaline seawater electrolysis.

Graphical abstract: Ultrafast in situ-formed FeOOH ultrathin overlayers on NiFe-LDH surfaces enable highly durable alkaline seawater oxidation

Supplementary files

Article information

Article type
Research Article
Submitted
14 Oct 2025
Accepted
08 Feb 2026
First published
25 Feb 2026

Inorg. Chem. Front., 2026, Advance Article

Ultrafast in situ-formed FeOOH ultrathin overlayers on NiFe-LDH surfaces enable highly durable alkaline seawater oxidation

Z. Chen, L. Chen, S. Yin, Y. Zhang, Y. Ding, K. Fan, L. Zong, L. Wang, X. Du, Z. Hu and T. Zhan, Inorg. Chem. Front., 2026, Advance Article , DOI: 10.1039/D5QI02094H

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