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March 25, 2026ACS Nano3 citations

Wavelength-Tailoring Copper Oxidation States for Tunable Photoelectrochemical Syngas Generation

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YWYi-Cheng WangYLYan LiuHXHeng Xu

Key Points

  • The aim is to optimize the oxidation state of copper for improved syngas generation via PEC CO2RR.
  • Proposed a photodeposition method for loading Cu2-xTe onto S-doped ZnTe/ZnO.
  • Regulated copper oxidation states between +1 and +2 using varying light wavelengths.
  • Studied the impact of oxidation state on the electronic structure of active sites.
  • Achieved a CO/H2 molar ratio tunable from 0.45 to 1.70.
  • Shorter wavelengths reduced copper's oxidation state, enhancing electron density.
  • Demonstrated increased CO selectivity and suppressed hydrogen evolution reaction.

Abstract

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.

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Cite This Study

Wang et al. (2026) studied this question.

synapsesocial.com/papers/69c37b11b34aaaeb1a67d2c8https://doi.org/10.1021/acsnano.5c21792
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