4.2 Article

Enhanced photocatalytic activity of ZnO-NiO nanocomposites synthesized through a facile sonochemical route

期刊

SN APPLIED SCIENCES
卷 1, 期 11, 页码 -

出版社

SPRINGER INTERNATIONAL PUBLISHING AG
DOI: 10.1007/s42452-019-1426-z

关键词

Photocatalyst; Zinc oxide; Nanocomposites; Heterostructures; Methylene blue

资金

  1. University Grants Commission (UGC), Ministry of Human Recourses Development, Government of India [2012-13 PDFSS - 2012-13-SC-KER-2859]
  2. Kerala SC/ST welfare department, Government of Kerala [B3-25950/16]
  3. Kerala State Council for Science, Technology and Environment (KSSTE) under the SARD scheme [KSCSTE SARD/003/2016]

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Formation of heterostructures with p-type oxides such as NiO and CuO is one of the effective methods for improving the photocatalytic performance of ZnO. Such systems are often synthesized through template-based growth techniques that involve many steps. We have prepared ZnO-NiO composites through a facile, template-free, low-temperature sonochemical route. High-resolution transmission electron microscopy analysis indicates the formation of ZnO-NiO heterostructures. Photocatalytic activity of ZnO-NiO nanocomposites in the decomposition of methylene blue dye under solar irradiation is found to be much larger than that of both pure ZnO (1.26 x 10(-2) min(-1)) and NiO (0.31 x 10(-2) min(-1)) establishing synergistic effects. The rate constant increases with increase in the percentage of NiO in the composite and is 6.00 x 10(-2) min(-1) for sample with the highest percentage of NiO. Rate constants for the second and third runs are estimated to be 4.4x 10(-2) and 4.2x 10(-2) min(-1) which are promising. The main mechanism of enhancement of photocatalytic activity of the composites is identified as the more effective separation of the photogenerated free charge carries due to the internal electric field at the ZnO-NiO interface. Sharp decrease in the relative intensity of the band-band emission of ZnO at similar to 380 nm in the case of composite samples and analysis of the relative position of the conduction band and valence band edges of ZnO and NiO support the proposed mechanism.

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