Heliyon · 2024 · 12 citations · 52 references
Photoelectrochemical water splitting via solar irradiation has garnered significant interest due to its potential in large-scale renewable hydrogen production. Heterostructure materials have emerged as an effective strategy, demonstrating enhanced performance in photoelectrochemical water-splitting applications compared to individual photocatalysts. In this study, to augment the performance of sprayed TiVO<sub>4</sub> thin films, a hydrothermally prepared WO<sub>3</sub> underlayer was integrated beneath the spray pyrolised TiVO<sub>4</sub> film. The consequent heterostructure demonstrated notable enhancements in optical, structural, microstructural attributes, and photocurrent properties. This improvement is attributed to the strategic deposition of WO<sub>3</sub> underlayer, forming a heterostructure composite electrode. This led to a marked increase in photocurrent density for the WO<sub>3</sub>/TiVO<sub>4</sub> photoanode, reaching a peak of 740 μA/cm<sup>2</sup> at an applied potential of 1.23 V vs RHE, about nine-fold that of standalone TiVO<sub>4</sub>. Electrochemical impedance spectroscopy revealed a reduced semicircle for the heterostructure, indicating improved charge transfer compared to bare TiVO<sub>4</sub>. The heterostructure photoelectrode exhibited enhanced charge carrier conductivity at the interface and sustained stability over 3 h. The distinct attributes of heterostructure photoelectrode present significant opportunities for devising highly efficient sunlight-driven water-splitting systems.
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Son Hoang, Sean P. Berglund, Nathan Hahn et al. · Journal of the American Chemical Society · 2012 · 611 citations