Issue 10, 2011

Facile synthesis of two-dimensional graphene/SnO2/Pt ternary hybrid nanomaterials and their catalytic properties

Abstract

In this paper, we reported a simple, aqueous-phase route to the synthesis of two-dimensional graphene/SnO2 composite nanosheets (GSCN) hybrid nanostructures consisting of 5 nm Pt nanoparticles supported on the both sides of GSCN. Functional two-dimensional GSCN were obtained through the reduction of graphene oxide (GO) using SnCl2 in the presence of polyelectrolyte poly(diallyldimethylammonium chloride) (PDDA). The main advantages of this preparation are that the reduction of GO, the formation of SnO2 and the functionalization of GSCN were achieved simultaneously through one-pot reaction. GSCN/Pt ternary hybrid nanomaterials were generated by in situreduction of negatively charged PtCl62 precursors adsorbed on the positively charged surface of GSCN through electrostatic attraction. The as-synthesized GSCN/Pt ternary hybrid nanomaterials exhibited high cycle stabilization during the catalytic reduction of p–nitrophenol into p-aminophenol by NaBH4. Additionally, our approach is expected to extend to other hybrid nanomaterials. We believe that the obtained GSCN/Pt ternary hybrid nanomaterials have great potential for applications in other field, such as electrochemical energy storage, sensors, and so on.

Graphical abstract: Facile synthesis of two-dimensional graphene/SnO2/Pt ternary hybrid nanomaterials and their catalytic properties

Supplementary files

Article information

Article type
Paper
Submitted
17 Jun 2011
Accepted
19 Aug 2011
First published
09 Sep 2011

Nanoscale, 2011,3, 4376-4382

Facile synthesis of two-dimensional graphene/SnO2/Pt ternary hybrid nanomaterials and their catalytic properties

C. Zhu, P. Wang, L. Wang, L. Han and S. Dong, Nanoscale, 2011, 3, 4376 DOI: 10.1039/C1NR10634A

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