4.7 Article

Enhanced visible Light-Driven photocatalytic hydrogen evolution and stability for noble Metal-Free MoS2/Zn0.5Cd0.5S heterostructures with W/Z phase junctions

Journal

APPLIED SURFACE SCIENCE
Volume 586, Issue -, Pages -

Publisher

ELSEVIER
DOI: 10.1016/j.apsusc.2022.152770

Keywords

MoS2 nanoflowers; MoS2/Zn0.5Cd0.5S; W/Z phase junctions; Photoinduced charge carriers; Visible light-driven photocatalytic hydrogen evolution

Funding

  1. National Natural Science Foundation of China [51802245]
  2. Shaanxi Province Innovative Talent Promotion Plan-Young Science and Technology Star [2021KJXX-43]
  3. Jiaxing Public Welfare Projects [2020AD10021]
  4. Natural Science Basic Research Plan in the Shaanxi Province of China [2020JQ-828, 2021JQ-654, 2021JQ-655]
  5. Shaanxi Provincial Association of Science and Technology Youth Talents Lifting Plan [20180418]
  6. Science and Technology Guidance Project Plan of China National Textile and Apparel Council [2020004]
  7. Shaanxi Provincial Education Department [18JK0350]
  8. China Postdoctoral Science Foundation [2018 M631188]
  9. Scientific Research Foundation for Ph.D., Xi'an Polytechnic University [BS1741]

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A series of composite heterojunction-MoS2/Zn0.5Cd0.5S photocatalysts, free of noble metal ions, were prepared using a simple hydrothermal method. The photocatalysts exhibited excellent photoresponse ability and hydrogen production performance, which can be attributed to the effective separation of charge carriers generated by irradiation.
A series of composite heterojunction-MoS2/Zn0.5Cd0.5S photocatalysts free of noble metal ions was prepared using a simple hydrothermal method. The X-ray diffraction spectra of the MoS2/Zn0.5Cd0.5S composites exhibit three strong intensive peaks, thereby explaining the existence of wurtzite (CdS) and zinc blende (ZnS) in the form of the wurtzite/zinc-blende phase junctions. Microstructural studies indicate that the sample displays a typical cubic crystal structure and that the MoS2 with flower-like structure uniformly wraps the granular Zn0.5Cd0.5S. X-ray photoelectron, Fourier transform infrared, and UV-Vis diffuse reflectance spectroscopic methods confirm that the heterojunction, which possesses outstanding photoresponse ability, is constructed between Zn0.5Cd0.5S nanoparticles and MoS2 nanoflowers. The fluorescence spectroscopy, surface photocurrent spectroscopy, and electrochemical studies indicate that Zn0.5Cd0.5S nanoparticles with specific amount of MoS2 nanoflowers can effectively suppress the recombination of photoinduced charge carriers of the composites. Therefore, pristine Zn0.5Cd0.5S nanoparticles loaded with 3%MoS2 exhibit optimum performance of hydrogen production (388.2 mu mol/h), which is 1.3 times that of pristine Zn0.5Cd0.5S nanoparticles. A plausible mechanism for enhanced photocatalysis is provided in terms of the heterojunction assisted effective separation of charge carriers that are generated by irradiation.

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