<p>In this work, an eco-friendly method was used to synthesize cerium–bismuth oxide nanostructures as a binary oxide nanocomposite. For this purpose, <span>L</span>-alanine was utilized as a novel and green fuel to produce a nanostructured Bi<sub>2</sub>O<sub>3</sub>–CeO<sub>2</sub> sample. The prepared porous CeO<sub>2</sub>–Bi<sub>2</sub>O<sub>3</sub> NPs and ionic liquid were used to develop a new sensor (Pr–CeO<sub>2</sub>–Bi<sub>2</sub>O<sub>3</sub>/IL/CPE)&#xa0;for detecting Chlorpromazine (CLP). The study showed that the present electrode has good electrochemical performance for CLP detection under a diffusion-controlled procedure. The chronoamperometric method was utilized to calculate the diffusion coefficient (D) of CLP, which was found to be 1.47 × 10<sup>–5</sup> cm<sup>2</sup> s<sup>− 1</sup>. The DPV technique was employed to establish the calibration curve, demonstrating a linear range of 0.02–140 µM and achieving a detection limit (LOD) of 9 nM. The prepared sensor also showed suitable repeatability and reproducibility. The practical applicability of Pr–CeO<sub>2</sub>–Bi<sub>2</sub>O<sub>3</sub>/IL/CPE for detecting CLP in various real samples showed good sensitivity and selectivity.</p>

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Amino acid-assisted green synthesis of a porous binary oxide nanocomposite for sensitive electrochemical detection of chlorpromazine

  • Sahar Zinatloo-Ajabshir,
  • Abbas Pardakhty,
  • Hadi Mahmoudi-Moghaddam,
  • Hamid Akbari Javar

摘要

In this work, an eco-friendly method was used to synthesize cerium–bismuth oxide nanostructures as a binary oxide nanocomposite. For this purpose, L-alanine was utilized as a novel and green fuel to produce a nanostructured Bi2O3–CeO2 sample. The prepared porous CeO2–Bi2O3 NPs and ionic liquid were used to develop a new sensor (Pr–CeO2–Bi2O3/IL/CPE) for detecting Chlorpromazine (CLP). The study showed that the present electrode has good electrochemical performance for CLP detection under a diffusion-controlled procedure. The chronoamperometric method was utilized to calculate the diffusion coefficient (D) of CLP, which was found to be 1.47 × 10–5 cm2 s− 1. The DPV technique was employed to establish the calibration curve, demonstrating a linear range of 0.02–140 µM and achieving a detection limit (LOD) of 9 nM. The prepared sensor also showed suitable repeatability and reproducibility. The practical applicability of Pr–CeO2–Bi2O3/IL/CPE for detecting CLP in various real samples showed good sensitivity and selectivity.