Enhanced photocatalytic efficiency of layered CdS/CdSe heterostructures: Insights from first principles electronic structure calculations

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2020

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Institute of Physics Publishing helen.craven@iop.org

Abstract

Metal sulfides are emerging as an important class of materials for photocatalytic applications, because of their high photo responsive nature in the wide visible light range. In this class of materials, CdS with a direct band gap of 2.4 eV, has gained special attention due to the relative position of its conduction band minimum, which is very close to the energies of the reduced protons. However, the photogenerated holes in the valence band of CdS are prone to oxidation and destroy its structure during photocatalysis. Thus constructing a CdS based heterostructure would be an effective strategy for improving the photocatalytic performance. In this work we have done a detail theoretical investigation based on hybrid density functional theory calculation to get insight into the energy band structure, mobility and charge transfer across the CdS/CdSe heterojunction. The results indicate that CdS/CdSe forms type-II heterostructure that has several advantages in improving the photocatalytic efficiency under visible light irradiation. © 2020 IOP Publishing Ltd.

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Keywords

Cadmium sulfide, Calculations, Charge transfer, Density functional theory, Electronic structure, Energy gap, Heterojunctions, II-VI semiconductors, Light, Sulfur compounds, Conduction-band minimum, First principles electronic structure, Hybrid density functional theory, Photocatalytic application, Photocatalytic efficiency, Photocatalytic performance, Theoretical investigations, Visible-light irradiation, Photocatalytic activity, article, density functional theory, irradiation, light, photocatalysis, theoretical study

Citation

Journal of Physics Condensed Matter, 2020, 32, 27, pp. -

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