One-step electrochemical preparation of a reduced graphene oxide/poly(sulfosalicylic acid) nanocomposite film for detection of acetaminophen and its application in human urine and serum studies

Literature Information

Publication Date 2015-08-17
DOI 10.1039/C5AY01654A
Impact Factor 2.896
Authors

Bo Zheng, Cong Li, Yaru Li, Yue Gu, Xiaoyi Yan, Liu Tang, Ruixue Chen, Zhiquan Zhang


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Abstract

A mild preparation tactic was developed for the fabrication of a reduced graphene oxide (rGO) and poly(sulfosalicylic acid) (PSA) nanocomposite film by a one-step electrochemical method. The nanocomposite film was characterized by scanning electron microscopy (SEM), Fourier transform infrared (FTIR) spectroscopy, and electrochemical methods. The electrochemical properties of the nanocomposite were evaluated by means of cyclic voltammetry (CV) and differential pulse voltammetry (DPV). Based on the synergistic effect of the rGO and PSA nanocomposite film, a sensitive electrochemical sensor for acetaminophen (AC) was successfully fabricated. The electrochemical reaction of AC at a glassy carbon electrode (GCE) modified with the PSA and rGO nanocomposite film (PSA/rGO/GCE) was proved to be a surface-controlled process involving the same number of protons and electrons. Under optimum experimental conditions, the anodic peak currents were linear over the AC concentrations ranging from 0.5 to 300 μM, with a limit of detection (LOD) of 0.041 μM (S/N = 3). Furthermore, the modified electrode was demonstrated to be feasible for analytical purposes in real samples. A linear calibration curve was obtained for the determination of AC in urine within the range of 1 to 300 μM with a LOD of 0.36 μM under optimized conditions. In addition, the PSA/rGO/GCE was demonstrated in human serum with satisfactory results.

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Analytical Methods

Analytical Methods
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Analytical Methods welcomes early applications of new analytical and bioanalytical methods and technology demonstrating the potential for societal impact. We require that methods and technology reported in the journal are sufficiently innovative, robust, accurate, and compared to other available methods for the intended application. Developments with interdisciplinary approaches are particularly welcome. Systems should be proven with suitably complex and analytically challenging samples. We encourage developments within, but not limited to, the following technologies and applications: global health, point-of-care and molecular diagnostics biosensors and bioengineering drug development and pharmaceutical analysis applied microfluidics and nanotechnology omics studies, such as proteomics, metabolomics or glycomics environmental, agricultural and food science neuroscience biochemical and clinical analysis forensic analysis industrial process and method development

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