Abstract

A novel heterostructure consisting of Ru and Cu co-doped ZnS nanopowders (RCZS) into a MoS2-graphene hybrid (MSG) is successfully prepared by the microwave-assisted solvothermal approach. RCZS nanopowders are fabricated on the surface of MSG, which produces a nanoscale interfacial between RCZS and MSG. As the photo-excited electrons of RCZS can easily migrate to MoS2 through graphene by hindering the electron and hole (e– and h+) recombination, the photocatalytic activity could be improved by effective charge transfer. As RCZS are anchored onto the MSG, the photoluminescence intensity of the chalcogenide composite photocatalyst obviously decreases. In addition, a quaternary ruthenium and copper-based chalcogenide RCZS/MSG is able to improve the harvest and utilization of light. With the increase in the concentrations of Ru until 4 mol%, the band gap significantly decreases from 3.52 to 2.73 eV. At the same time, moderate modification by ruthenium can decrease the PL intensity compared to the pristine CZS/MSG sample, which indicates the enhancement of e– and h+ separation by Ru addition. The photocatalytic activity of as-synthesized chalcogenide composite photocatalysts is evaluated by the photocatalytic carbon dioxide reduction. Optimized operation conditions for carbon dioxide reduction have been performed, including the concentration of NaOH solution, the amount of RCZS/MSG photocatalyst, and the content of co-doped ruthenium. The doping of ruthenium would efficiently improve the performance of the photocatalytic activity for carbon dioxide reduction. The optimal conditions, such as the concentration of 2 M NaOH and the 0.5RCZS/MSG dosage of 0.05 g L–1, provide the maximum methane gas yield of 58.6 μmol h−1 g–1.

Highlights

  • As solar energy is a kind of environmentally friendly energy source, it is a great idea to convert solar energy into solar fuels via the photocatalytic reaction, i.e., the photocatalytic carbon dioxide reduction [1,2]

  • In this study, we have synthesized novel Ru and Cu co-doped ZnS nanopowders (RCZS)/MoS2 /graphene (MSG) heterostructured photocatalysts via the microwave-assisted solvothermal method to explore their photocatalytic performances in carbon dioxide reduction via simulated solar irradiation

  • The photocatalytic carbon dioxide reduction activities of RCZS/MoS2-graphene hybrid (MSG) heterostructured photocatalysts were performed via simulated solar light

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Summary

Introduction

As solar energy is a kind of environmentally friendly energy source, it is a great idea to convert solar energy into solar fuels via the photocatalytic reaction, i.e., the photocatalytic carbon dioxide reduction [1,2]. A quaternary copper-based chalcogenide performed efficient capture and utilization of solar energy [7,8,9]. Based on our previous studies, we know that copper-modified zinc sulfide could effectively enhance the photocatalytic activity efficiency [13,14]. In this study, we have synthesized novel Ru and Cu co-doped ZnS nanopowders (RCZS)/MoS2 /graphene (MSG) heterostructured photocatalysts via the microwave-assisted solvothermal method to explore their photocatalytic performances in carbon dioxide reduction via simulated solar irradiation

Chalcogenide Composite Photocatalysts
Photocatalytic
The Different
The Concentration of Reductant
Methods
Characterization Techniques
Photocatalytic Hydrogen Evolution and Carbon Dioxide Reduction
Conclusions
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