Fabrication of dual-functional smart materials: 2D-WO3/rGO nanocomposite for electrochemical detection and photocatalytic degradation of tetracycline

The extensive utilization of the antibacterial agent tetracycline (TC) in pharmaceuticals and livestock farming has sparked considerable health apprehensions for the welfare of both animals and humans. The presence of TC drug residues in soil, rivers, lakes, and groundwater further exacerbates these...

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Published inSensors and actuators. A. Physical. Vol. 379; p. 115873
Main Authors Parasuraman, Balaji, Chinnapaiyan, Sathishkumar, Kandasamy, Bhuvaneswari, Shanmugam, Paramasivam, Alothman, Asma A., Thangavelu, Pazhanivel, Huang, Chi-Hsien
Format Journal Article
LanguageEnglish
Published Elsevier B.V 01.12.2024
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Summary:The extensive utilization of the antibacterial agent tetracycline (TC) in pharmaceuticals and livestock farming has sparked considerable health apprehensions for the welfare of both animals and humans. The presence of TC drug residues in soil, rivers, lakes, and groundwater further exacerbates these concerns. To address these issues, we synthesized WO3/rGO nanocomposites using a simple hydrothermal method and explored their bifunctional catalyst properties for the first time. These nanocomposites were investigated for their potential applications in electrochemical sensing and photocatalytic degradation of TC drug. The electrocatalytic oxidation of TC drug using the WO3/rGO/Glassy Carbon Electrode (GCE) nanocomposites demonstrated good sensitivity, low detection limit, low quantification limit and wide linear range of 1.708 µA µM−1 cm−2, 202 nM, 0.202 µM and 0.1–400 µM, respectively. Moreover, we assessed the WO3/rGO/GCE nanocomposites effectiveness in detecting TC drug in real samples, including milk, lake water, fish, and tap water, and found the recovery results to be satisfactory. Additionally, the nanocomposites displayed noteworthy photocatalytic activity in degrading the TC drug. The as-prepared WO3/rGO nanocomposites exhibited an impressive degradation efficiency of 87.5 % over 120 minutes under UV–visible light irradiation. Radical trapping tests confirmed that the *OH- radicals played a significant role in the degradation process. Our study highlights the outstanding electrochemical and photocatalytic properties of WO3/rGO nanocomposites, positioning them as highly promising materials for future biomedical and environmental applications. [Display omitted] •WO3/rGO nanocomposites is firstly used to detect and degradation of TC drug.•This method can be used to determine TC drug in real water and food sample.•2D-WO3/rGO nanosheet showed a wide linear range and high sensitivity.•Photocatalytic degradation mechanism pathway also discussed.
ISSN:0924-4247
DOI:10.1016/j.sna.2024.115873