Differential pulse voltammetry determination of salbutamol using disulfite tungsten/activated carbon modified glassy carbon electrode

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作者
Nguyen, Do Mai [1 ]
Toan Tran, Thanh Tam [2 ]
Doan, Manh Dung [3 ]
Le, Van Thuan [4 ,5 ]
Dinh, Quang Khieu [1 ]
机构
[1] University of Sciences, Hue University, 530000, Viet Nam
[2] Institute of Applied Technology, Thu Dau Mot University, Binh Duong Province, 75000, Viet Nam
[3] Institute of Biotechnology and Environment, Tay Nguyen University, Buon Ma Thuot,630000, Viet Nam
[4] Center for Advanced Chemistry, Institute of Research and Development, Duy Tan University, 03 Quang Trung, Da Nang,55000, Viet Nam
[5] The Faculty of Natural Sciences, Duy Tan University, 03 Quang Trung, Da Nang,55000, Viet Nam
关键词
Carbon - Electrochemical sensors - Gas adsorption - Glass membrane electrodes - Scanning electron microscopy - Tungsten compounds;
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摘要
In the present article, the disulfide tungsten/activated carbon derived from Eichhornia crassipes (WS2/AC) was synthesized by the hydrothermal process. The received materials were examined by X-ray diffraction, scanning electron microscopy, energy-dispersive X-ray – mapping, and nitrogen adsorption/desorption isotherms. The morphology of WS2/AC was tailored to have a micro/meso/macro structure that facilized large electric conductivity and quick ion diffusion. The WS2/AC sample was used as an electrode modifier for developing an electrochemical sensor for salbutamol detection. WS2/AC exhibited excellent oxidation toward salbutamol. Through some optimized conditions, the electrochemical signal of the proposed sensor varied linearly to the salbutamol concentration ranging from 1 to 210 μM with a low LOD (detection limit) of 0.52 μM. The developed sensor showed several merits: easy producing, convenient usage, fabulous selectivity, and good repeatability as well as reproducibility. Finally, the suggested technique can be applied to determine salbutamol in people's biological fluid with satisfactory recoveries of 98.5–104.4% and without statistics different from standard HPLC. © 2022 Elsevier Ltd
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