4.7 Article

Investigation on (Zn) doping and anionic surfactant (SDS) effect on SnO2 nanostructures for enhanced photocatalytic RhB dye degradation

Journal

ENVIRONMENTAL RESEARCH
Volume 199, Issue -, Pages -

Publisher

ACADEMIC PRESS INC ELSEVIER SCIENCE
DOI: 10.1016/j.envres.2021.111312

Keywords

SnO2; Zn; Anionic surfactant; Bandgap; Nanoball; RhB

Funding

  1. UGC-SAP
  2. DST-FIST
  3. DST-PURSE
  4. MHRD-RUSA grants
  5. King Khalid University [R.G.P.2/22/42]

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In this study, doping and addition of surfactant were used to enhance the photocatalytic activity of SnO2 nanostructures. The synthesized SDS-(Zn-SnO2) nanostructure showed a 90% degradation rate of RhB dye under visible light, which was 2.5 times higher than the pristine sample. The narrowing of bandgap, smaller crystallite size, and improved growth of nanostructures in SDS-(Zn-SnO2) contributed to its superior performance in degrading toxic pollutants, making it a potential competitor in future wastewater treatment research.
Herein we reported the effect of doping and addition of surfactant on SnO2 nanostructures for enhanced photocatalytic activity. Pristine SnO2, Zn-SnO2 and SDS-(Zn-SnO2) was prepared via simple co-precipitation method and the product was annealed at 600 degrees C to obtain a clear phase. The structural, optical, vibrational, morphological characteristics of the synthesized SnO2, Zn-SnO2 and SDS-(Zn-SnO2) product were investigated. SnO2, Zn-SnO2 and SDS-(Zn-SnO2) possess crystallite size of 20 nm, 19 nm and 18 nm correspondingly with tetragonal structure and high purity. The metal oxygen vibrations were present in FT-IR spectra. The obtained bandgap energies of SnO2, Zn-SnO2 and SDS-(Zn-SnO2) were 3.58 eV, 3.51 eV and 2.81 eV due to the effect of dopant and surfactant. This narrowing of bandgap helped in the photocatalytic activity. The morphology of the pristine sample showed poor growth of nanostructures with high level of agglomeration which was effectively reduced for other two samples. Product photocatalytic action was tested beneath visible light of 300 W. SDS-(Zn-SnO2) nanostructure efficiency showed 90% degradation of RhB dye which is 2.5 times higher than pristine sample. Narrow bandgap, crystallite size, better growth of nanostructures paved the way for SDS-(Zn-SnO2) to degrade the toxic pollutant. The superior performance and individuality of SDS-(Zn-SnO2) will makes it a potential competitor on reducing toxic pollutants from wastewater in future research.

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