Issue 58, 2014

Self-doping for visible light photocatalytic purposes: construction of SiO2/SnO2/SnO2:Sn2+ nanostructures with tunable optical and photocatalytic performance

Abstract

This work explores a hydrothermal route to synthesis of self-doped SiO2/SnO2/SnO2:Sn2+ nanostructures with controlled hierarchical structures and lattice parameters for tunable optical and photocatalytic properties. The effects of Sn2+ self-doping in the SnO2 lattice on the local structure, electronic structure, and photodegradation of methyl orange were systematically investigated. It is found that two layers of SnO2 and SnO2:Sn2+ nanocrystals with thicknesses of 13 and 8 nm were coated on SiO2 spheres showing monodispersed features. By Sn2+ doping, a blue shift of the Sn 3d XPS binding energy was observed, which is thought to be mainly related to the difference in electronegativity of Sn4+, Sn2+ and variation of lattice parameters. In contradiction to the quantum size effect, the self-doped SiO2/SnO2/SnO2:Sn2+ nanostructures showed an abnormal red shift of band gap energy, which is related to doping effects and variations of lattice parameters. With well-defined lattice structure and electronic structure, the photocatalytic performance of SiO2/SnO2/SnO2:Sn2+ nanostructures can be well regulated and optimized.

Graphical abstract: Self-doping for visible light photocatalytic purposes: construction of SiO2/SnO2/SnO2:Sn2+ nanostructures with tunable optical and photocatalytic performance

Supplementary files

Article information

Article type
Paper
Submitted
10 May 2014
Accepted
02 Jul 2014
First published
17 Jul 2014

RSC Adv., 2014,4, 30820-30827

Self-doping for visible light photocatalytic purposes: construction of SiO2/SnO2/SnO2:Sn2+ nanostructures with tunable optical and photocatalytic performance

M. Sun, Y. Su, C. Du, Q. Zhao and Z. Liu, RSC Adv., 2014, 4, 30820 DOI: 10.1039/C4RA04356A

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