ALD-engineered amorphous NiO/crystalline CoFe-PBA heterointerface for high-performance seawater oxygen evolution

Abstract

The practical conversion of seawater to hydrogen faces critical limitations from chloride attack and anodic competition, requiring electrocatalysts with superior robustness. Herein, we constructed an amorphous/crystalline heterointerface catalyst, NiO/CoFe Prussian blue analogues, via low-temperature atomic layer deposition (ALD) toward efficient seawater oxidation. Experimental investigations revealed that utilization of the conformal coating capability of ALD enabled precise integration of a structurally disordered NiO layer onto the crystalline CoFe-PBA framework. This integration resulted in the formation of a robust heterointerface, which synergized the amorphous phase's isotropic corrosion resistance and the crystalline matrix's high conductivity. The catalyst achieved overpotentials of η10 = 257 mV and η100 = 301 mV in alkaline seawater. Computational analysis demonstrated that the oxygen-bridged Fe/Co–O–Ni covalent interactions induced strong electronic coupling, modulating the 3d orbital configuration of Fe/Co/Ni sites. This, in turn, led to a downshifted d-band center, optimizing oxygen intermediate adsorption and enhancing the chloride tolerance via Co sites. Notably, 100 hour stability at 100 mA cm−2 was maintained. This work introduces an ALD-enabled interfacial engineering methodology for fabricating durable heterointerface catalysts tailored for seawater electrolysis hydrogen production.

Graphical abstract: ALD-engineered amorphous NiO/crystalline CoFe-PBA heterointerface for high-performance seawater oxygen evolution

Supplementary files

Article information

Article type
Research Article
Submitted
19 Aug 2025
Accepted
13 Nov 2025
First published
26 Nov 2025

Inorg. Chem. Front., 2026, Advance Article

ALD-engineered amorphous NiO/crystalline CoFe-PBA heterointerface for high-performance seawater oxygen evolution

J. Tan, M. Guo, H. Li, Y. Qi, M. Wang, X. Wang, H. Li and L. Ding, Inorg. Chem. Front., 2026, Advance Article , DOI: 10.1039/D5QI01744K

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