Novel alkaline-reduced cuprous oxide/graphene nanocomposites for non-enzymatic amperometric glucose sensor application
By Yazid, Siti Nur Akmar Mohd; Isa, Illyas Md; Hashim, Norhayati
Published in Materials Science and Engineering: C
NULL
2016
Abstract
Abstract This paper presents the fabrication of a highly sensitive and selective glucose sensor based on cuprous oxide/graphene nanocomposites-modified glassy carbon electrode (Cu2O/graphene/GCE). The Cu2O/graphene nanocomposites were synthesized based on a simple and straightforward chemical reduction process in alkaline aqueous solution using sodium carbonate as reductant. The size and shape of Cu2O nanoparticles on graphene sheets can be controlled by changing the amount of graphene oxide added during reaction. The electrochemical properties of Cu2O/graphene/GCE in 0.1 M phosphate buffer solution were investigated by cyclic voltammetry and electrochemical impedance spectroscopy. It was found that the pH, concentration of supporting electrolyte, and scan rate had very crucial effect on the sensitivity of prepared sensor towards glucose oxidation. At an applied potential of + 0.50 V, the Cu2O/graphene/GCE presented a high sensitivity of 1330.05 ?A mM? 1 cm? 2 and fast response (within 3 s). The amperometric non-enzymatic glucose sensor developed had a linear relationship from 0.01 mM to 3.0 mM glucose and detection limit of 0.36 ?M. In the presence of ascorbic acid, uric acid, dopamine, chloride and citrate ion and other carbohydrates, the interferences were negligible. The proposed sensor was successfully applied for the determination of glucose concentration in real human blood samples.
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