The photoelectrochemical CO2 reduction reaction (PEC CO2RR) to syngas is of great significance for meeting the needs of the green chemical industry, and controlling the CO/H2 ratio is an important issue. However, the reliance on thin-film semiconductor photocathodes significantly limits the available fabrication methods, and some of the proposed schemes have not been able to precisely tune the CO/H2 ratio by indirectly regulating the electronic structure of active sites. In order to overcome the limitations of traditional fabrication methods, this work proposes a simple photodeposition method for loading Cu2-xTe onto 1% S-doped ZnTe/ZnO to regulate the oxidation state of Cu between +1 and +2 by precisely controlling the deposition light wavelength from violet to red. With shorter deposition light wavelengths, the photon energy increases, leading to a reduced valence state of Cu. As the Cu oxidation state decreases, the band structure of Cu2-xTe-ZnTe can be modulated, with the overall d-band center shifting toward the Fermi level. Besides, the electron density around the Cu active sites increases due to the shorter Cu-Cu bond, resulting in stabilized reaction intermediates and a faster charge transfer process, leading to higher CO selectivity with suppressed hydrogen evolution reaction. As a result, Cu@S-ZnTe/ZnO shows a tunable CO/H2 molar ratio ranging from 0.45 to 1.70 by adjusting the oxidation state of Cu, which can be precisely controlled by simply varying the deposition light wavelength with a specific filter. This demonstrates the great potential of the proposed photodeposition method and the resulting photoelectrocatalyst for practical PEC CO2RR applications.
Wang et al. (2026) studied this question.