The practical photocatalytic application of cadmium sulfide (CdS) has been significantly constrained by fast carrier recombination and significant photocorrosion. Therefore, we developed a three-dimensional (3D) step-by-step (S-scheme) heterojunction using the coupling interface between purple tungsten oxide (WO) nanowires and CdS nanospheres. The photocatalytic hydrogen evolution rate of optimized WO/CdS 3D S-scheme heterojunction can reach 9.7 mmol·h·g, 7.5 and 16.2 times greater than pure CdS (1.3 mmol·h·g) and 10 wt%-WO/CdS (mechanical mixing, 0.6 mmol·h·g), proving that the tight S-scheme heterojunction constructed by the hydrothermal method can efficiently enhance the carrier separation. Notably, the apparent quantum efficiency (AQE) of WO/CdS 3D S-scheme heterojunction approaches 7.5% and 3.5% at 370 nm and 456 nm, respectively, which is 7.5 and 8.8 times than pure CdS (1.0% and 0.4%). The produced WO/CdS catalyst also has relative stability of structure and hydrogen production. Additionally, the H evolution rate of WO/CdS 3D S-scheme heterojunction is 1.2 times greater than 1 wt%-platinum (Pt)/CdS (8.2 mmol·h·g), which indicates that the WO can effectively replace the precious metal for boosting the hydrogen production rate.

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http://dx.doi.org/10.1016/j.jcis.2023.02.150DOI Listing

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