Tuning the bifunctional properties of an α-Fe2O3/Fe2TiO5/Pt heterojunction photoelectrode for light-induced water oxidation and oxygen reduction activity

Abstract

Bifunctional photoelectrodes for the water oxidation reaction (WOR) and oxygen reduction reaction (ORR) have paramount importance in solar-powered rechargeable metal–air batteries. Herein, we strategically fabricate a photoactive core–shell bifunctional electrocatalyst for cathode materials in solar-powered rechargeable zinc–air batteries (SRZBs) with a type-II heterojunction band alignment, comprising an n-type α-Fe2O3 nanorod core and a thin pseudobrookite phase Fe2TiO5 shell. Pt nanoparticles (NPs) are precisely embedded on the Fe2TiO5 shell via the atomic layer deposition technique to induce bifunctional WOR and ORR properties of the α-Fe2O3/Fe2TiO5 heterojunction photoelectrode. The WOR and ORR properties are optimized by precisely controlling the Fe2TiO5 shell thickness and decorating Pt NPs on the Fe2TiO5 surface of the heterojunction photoelectrode. Finally, the α-Fe2O3/Fe2TiO5/Pt heterojunction photoelectrode is applied as a cathode in SRZBs, exhibiting excellent charging/discharging performance with a voltage gap of only 0.3 V under 1 sun illumination, and the SRZB maintains good cycling stability for over 50 h at 0.1 mA cm−2 in 1 M potassium hydroxide electrolyte. This research paves the way to fabricate bifunctional photoelectrodes with efficient WOR and ORR properties for SRZB applications.

Graphical abstract: Tuning the bifunctional properties of an α-Fe2O3/Fe2TiO5/Pt heterojunction photoelectrode for light-induced water oxidation and oxygen reduction activity

Supplementary files

Article information

Article type
Paper
Submitted
19 Feb 2025
Accepted
14 Jul 2025
First published
15 Jul 2025

J. Mater. Chem. A, 2025, Advance Article

Tuning the bifunctional properties of an α-Fe2O3/Fe2TiO5/Pt heterojunction photoelectrode for light-induced water oxidation and oxygen reduction activity

H. Khan, A. Razazzadeh, M. Shamekhi, G. H. Peslherbe, M. Jung, S. Bera and S. Kwon, J. Mater. Chem. A, 2025, Advance Article , DOI: 10.1039/D5TA01401H

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