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February 12, 2026Advanced Sustainable Systems0 citationsOpen Access

Aqueous Synthesis of Efficient Zinc Ferrite Thin Film Photoelectrodes for Water Oxidation

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TITayyaba IntizarRMIT UniversityTNTriet NguyenRMIT UniversityKAKanishk ArunrajRMIT University

Key Points

  • The research aims to enhance the photoelectrochemical performance of zinc ferrite thin films for water oxidation.
  • Deposited ZnFe2O4 thin films using aqueous sol-gel method.
  • Characterized thin films through X-ray diffraction and electron microscopy.
  • Explored the impact of annealing temperature and atmosphere on PEC performance.
  • Achieved maximum photocurrent density of 0.28 mA/cm2 at 1.23 V vs. RHE.
  • Performance improved 4 times compared to air-annealed samples.
  • Optimal conditions were found at annealing temperature of 700°C under nitrogen atmosphere.

Abstract

ABSTRACT Zinc ferrite (ZnFe 2 O 4 ) is a potential photoanode material for photoelectrochemical (PEC) water splitting due to its suitable properties, such as an ideal band gap, chemical robustness, low cost, and earth abundance. However, to date, ZnFe 2 O 4 struggles to achieve satisfactory performance. Here, we show the deposition of ZnFe 2 O 4 thin films using a simple aqueous sol‐gel method and unravel the role of processing conditions on their PEC performance. We obtained pure spinel zinc ferrite with a nanocrystalline porous morphology, as confirmed by X‐ray diffraction and electron microscopy, and a suitable optical band gap of 2.3 eV. We demonstrate how the PEC performance is greatly affected by the annealing temperature and environment. Annealing at high temperatures (700°C) under a nitrogen atmosphere provides the optimal conditions, achieving photoanodes exhibiting the highest water oxidation photocurrent density of 0.28 mA/cm 2 at 1.23 V vs. RHE (reversible hydrogen electrode), ∼4 times higher than the best air‐annealed sample and also ∼4 times higher than the samples annealed in nitrogen below 600°C. The reasons behind this behavior are elucidated using spectroscopic methods, including optical, X‐ray photoelectron, and impedance, and attributed to enhanced electrical properties facilitating charge transport, providing guidelines for future improvement for these emerging ferrite photoanode materials.

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Cite This Study

Intizar et al. (2026) studied this question.

synapsesocial.com/papers/698d6d9f5be6419ac0d52aachttps://doi.org/10.1002/adsu.70388
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