Oxygen vacancy-rich Fe3O4-enriched P-Fe2TiO5 sites generated by Na incorporation and NiP deposition for accelerated electrocatalytic OER

Abstract

We developed an Na-incorporated Fe2TiO5-Fe3O4 (Na-Fe-FT) catalyst for the first time using a modified sol–gel method; the material was then loaded onto an NiP matrix to create a dual-functional electrode for application in electrocatalytic OER and photocatalytic HER. The Na incorporation into Fe-FT generated functional Ti3+ states and increased oxygen vacancy concentrations. Electroless NiP deposition forms Ti–O–P bonds in Fe2TiO5 and oxygen vacancy-rich Fe3O4 phases on the NiP electrodes. The interconnected network morphology with cavity features and distinct grain boundaries on the Fe-FT catalyst provided an increased electrochemically active surface area and active sites for enhanced water splitting. During EIS analysis at OCP, the optimized Na-Fe-FT/NiP showed a very low Rct value of 282.2 ohm and a significantly higher ECSA compared with other samples. The Na-Fe-FT catalyst exhibited a lower overpotential of 249 mV to reach 10 mA cm−2 and a Tafel slope as low as 79 mV dec−1. The higher hydrolytic stability of the Ti–O–P bonds and the ferroelectric character of Fe2TiO5 in the presence of higher concentrations of Fe3+ and NiFe heterojunctions promoted an OPM mechanism at the phosphorous-incorporated Fe2TiO5 phase (P-FT) and OVSM mechanism at the oxygen vacancy-rich Fe3O4 phase (Ov-Fe) during the OER. Additionally, the catalyst showed broad UV-visible absorption, enabling efficient photocatalytic hydrogen evolution at a yield of 3.34 mmol cm−2 over 5 hours, along with a high photocurrent density of 12.8 mA cm−2 at 1.479 V vs. RHE. These results demonstrate that the Na-incorporated Fe3O4–Fe2TiO5/NiP electrodes (Na-Fe-FT/NiP) serve as effective catalysts for both photo- and electro-catalytic water splitting under industrially relevant conditions.

Graphical abstract: Oxygen vacancy-rich Fe3O4-enriched P-Fe2TiO5 sites generated by Na incorporation and NiP deposition for accelerated electrocatalytic OER

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Article information

Article type
Paper
Submitted
25 Nov 2025
Accepted
07 Feb 2026
First published
12 Feb 2026

J. Mater. Chem. A, 2026, Advance Article

Oxygen vacancy-rich Fe3O4-enriched P-Fe2TiO5 sites generated by Na incorporation and NiP deposition for accelerated electrocatalytic OER

R. B. Nair, A. A. Krishnan, M. A. Aneesh Kumar, S. Harikumar, M. B, V. C., M. A. Sha, L. Radhakrishnan, S. Kurian and P. S. Arun, J. Mater. Chem. A, 2026, Advance Article , DOI: 10.1039/D5TA09606E

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