Tailoring the bandgap of MnO for visible light driven photocatalysis.

J Environ Manage

School of Science, Minzu University of China, Beijing, 100081, China; Optoelectronics Research Centre, Minzu University of China, Beijing, 100081, China. Electronic address:

Published: September 2021

The photocatalytic activity of pure MnO and silver (Ag) modified MnO nanoparticles have been investigated. The nanoparticles were prepared by using co-precipitation technique. The structural analysis showed that the Ag modified MnO was successfully synthesized. For instance, a slight shift to lower angle of XRD pattern was observed after Ag doping. Morphological analysis revealed that the particles have an average size of 274 nm, 287 nm and 321 nm for pure, 1% and 3% Ag modified MnO respectively. The UV-Visible analysis indicated that the bandgap of MnO decreased with increased Ag content and the band gap is 1.4 eV with the 3% of Ag content. The spectra obtained from DRS were also evaluated through inverse logarithmic derivative method (ILD) to counter check the bandgap values. 3% Ag-modified photocatalysts exhibited the enhanced decolorization efficiency compared to pure MnO nanoparticles. The pseudo first order kinetic model is used to explain the photocatalytic kinetics of the photocatalyst. The rate constant values are 0.01/min, 0.017/min and 0.024/min for pure MnO, 1% Ag and 3% Ag modified MnO nanoparticles, respectively.

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http://dx.doi.org/10.1016/j.jenvman.2021.112854DOI Listing

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