Please use this identifier to cite or link to this item: http://hdl.handle.net/2289/6072
Title: Graphene–platinum nanocomposite as a sensitive and selective voltammetric sensor for trace level arsenic quantification
Authors: kempegowda, R.
Antony, D.
Malingappa, P.
Keywords: arsenic
graphene–platinum
nanocomposite
chemical modification,
square-wave anodic stripping voltammetry
spinach leaves
CCC
Issue Date: 1-Apr-2014
Publisher: Taylor & Francis
Citation: International Journal of Smart and Nano Materials, 2014, Vol. 5, p.17-32
Abstract: A simple protocol for the chemical modification of graphene with platinum nanoparticles and its subsequent electroanalytical application toward sensitive and selective determination of arsenic has been described. Chemical modification was carried out by the simultaneous and sequential chemical reduction of graphene oxide and hexachloroplatinic acid in the presence of ethylene glycol as a mild reducing agent. The synthesized graphene–platinum nanocomposite (Gr–nPt) has been characterized through infrared spectroscopy, x-ray diffraction study, field emission scanning electron microscopy and cyclic voltammetry (CV) techniques. CV and square-wave anodic stripping voltammetry have been used to quantify arsenic. The proposed nanostructure showed linearity in the concentration range 10–100 nM with a detection limit of 1.1 nM. The proposed sensor has been successfully applied to measure trace levels of arsenic present in natural sample matrices like borewell water, polluted lake water, agricultural soil, tomato and spinach leaves.
Description: Open Access Under Creative Commons Attribution
URI: http://hdl.handle.net/2289/6072
ISSN: 1947-5411
1947-542X (Online)
Alternative Location: http://dx.doi.org/10.1080/19475411.2014.898710
Copyright: 2014 Taylor & Francis
Appears in Collections:Research Papers (SCM)

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