Core-shell nanowire arrays based on ZnO and CuO for water stable photocatalysts.

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National Institute of Materials Physics, Multifunctional Materials and Structures Laboratory, Functional Nanostructures Group, 405A Atomistilor Street, 077125, Magurele, Ilfov, Romania.

Published: November 2019


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Article Abstract

Staggered gap radial heterojunctions based on ZnO-CuO core-shell nanowires are used as water stable photocatalysts to harvest solar energy for pollutants removal. ZnO nanowires with a wurtzite crystalline structure and a band gap of approximately 3.3 eV are obtained by thermal oxidation in air. These are covered with an amorphous CuO layer having a band gap of 1.74 eV and subsequently form core-shell heterojunctions. The electrical characterization of the ZnO pristine and ZnO-CuO core-shell nanowires emphasizes the charge transfer phenomena at the junction and at the interface between the nanowires and water based solutions. The methylene blue degradation mechanism is discussed taking into consideration the dissolution of ZnO in water based solutions for ZnO nanowires and ZnO-CuO core-shell nanowires with different shell thicknesses. An optimum thickness of the CuO layer is used to obtain water stable photocatalysts, where the ZnO-CuO radial heterojunction enhances the separation and transport of the photogenerated charge carriers when irradiating with UV-light, leading to swift pollutant degradation.

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http://www.ncbi.nlm.nih.gov/pmc/articles/PMC6872873PMC
http://dx.doi.org/10.1038/s41598-019-53873-0DOI Listing

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