Issue 24, 2022

Liquid phase high shear exfoliated few-layered graphene for highly sensitive ascorbic acid electrochemical sensors

Abstract

Electrochemical sensors based on graphene have gained importance owing to their high selectivity and sensitivity arising from the high surface area and electrocatalytic activity of graphene based nanomaterials. While significant amount of work has been carried out on graphene synthesis, lesser attention has been paid to synthesis of graphene suited for electrochemical sensing applications. This work demonstrates the synthesis of graphene by using a liquid phase high shear exfoliation (LP-HSE) method. Use of appropriate dispersing and antifoaming agents helped in obtaining a high-quality graphene colloidal suspension in water. Later, the dispersing and antifoaming agents were washed away to get exfoliated graphene suited for electrochemical sensing as confirmed by electrocatalytic activity measurements. The potential usage of exfoliated graphene in electrochemical sensors was confirmed by evaluating the performance of exfoliated graphene for ascorbic acid sensing. Linear sweep voltammetry (LSV) and amperometry techniques were used for ascorbic acid sensing. The sensor based on exfoliated graphene was highly selective and sensitive toward ascorbic acid (AA) oxidation, and the limit of detection (LOD) of fabricated sensors was 1.8 μM. The interference study confirmed that the fabricated sensors are highly selective. The precise determination of AA in vitamin C supplements revealed the potential usage of exfoliated graphene in the real-time determination of AA.

Graphical abstract: Liquid phase high shear exfoliated few-layered graphene for highly sensitive ascorbic acid electrochemical sensors

Supplementary files

Article information

Article type
Paper
Submitted
10 Jun 2022
Accepted
13 Oct 2022
First published
14 Oct 2022
This article is Open Access
Creative Commons BY-NC license

Mater. Adv., 2022,3, 9019-9029

Liquid phase high shear exfoliated few-layered graphene for highly sensitive ascorbic acid electrochemical sensors

R. Banavath, A. Abhinav, S. S. Nemala, R. Srivastava and P. Bhargava, Mater. Adv., 2022, 3, 9019 DOI: 10.1039/D2MA00666A

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