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Correction to: Solvothermal preparation of CeO2 nanoparticles–graphene nanocomposites as an electrochemical sensor for sensitive detecting pentachlorophenol

  • Carbon Letters
  • Abbr : Carbon Lett.
  • 2022, 32(7), pp.1799-1799
  • DOI : 10.1007/s42823-022-00353-7
  • Publisher : Korean Carbon Society
  • Research Area : Natural Science > Natural Science General > Other Natural Sciences General
  • Received : March 28, 2022
  • Accepted : May 6, 2022
  • Published : December 1, 2022

Yang Man 1 Chen Yiyang 1 Wang Haitao 1 Zou Yilun 1 Wu Pingxiu 2 Zou Jing 3 Jiang Jizhou 1

1School of Chemistry and Environmental Engineering
2Semiconductor Electronic Special Gas of Hubei Engineering Research Center
3Resources Development and Utilization of Ministry of Education, Wuhan Institute of Technology

Accredited

ABSTRACT

Pentachlorophenol (PCP), as one of the common pesticide and preservatives, is easily accumulated in living organisms. Considering the high toxicity of PCP, the development of an effective and sensitive inspection method to determine the residual trace amounts of PCP continues to be a significant challenge. Herein, a convenient and sensitive electrochemical sensor is constructed by modifying glassy carbon electrode with cerium dioxide (CeO2) nanoparticles anchored graphene (CeO2-GR) to detect trace PCP. Benefiting from the two-dimensional lamellar structural advantages, the extraordinary electron-transfer properties, as well as the intensive coupling effect between CeO2 nanoparticles and graphene, the afforded CeO2-GR electrode nanomaterial possesses excellent electrocatalytic activity for the oxidation of PCP. Under the optimum synthetic conditions, the PCP oxidation peak currents of developed CeO2–GR sample exhibit a wide linear range of 5–150 μM. Moreover, the corresponding detection limit of PCP on the CeO2–GR electrode is as low as 0.5 μM. Apart from providing a promising electrochemical sensor, this work, most importantly, promotes an efficient route for the construction of highly active sensing electrode materials.

Citation status

* References for papers published after 2023 are currently being built.