4.7 Article

Efficient removal of diclofenac from surface water by the functionalized multilayer magnetic adsorbent: Kinetics and mechanism

期刊

SCIENCE OF THE TOTAL ENVIRONMENT
卷 760, 期 -, 页码 -

出版社

ELSEVIER
DOI: 10.1016/j.scitotenv.2020.144307

关键词

Diclofenac; Multilayer structure; Surface functionality; Multistage kinetics; Mechanism

资金

  1. National Natural Science Foundation of China [21677020]
  2. Chongqing Technology Innovation and Application Demonstration project [cstc2018jszx-zdyfxmX0002]
  3. Analytical and Testing Center of Chongqing University

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The development of a novel multilayer adsorbent FCS-PD with magnetic separation ability and surface functionality has shown great potential for removing pharmaceutical diclofenac (DCF) from water. With a maximum adsorption capacity of 434.78 mg/g under neutral conditions, FCS-PD demonstrated superior performance compared to other reported adsorbents. Analysis on high-resolution X-ray photoelectron spectroscopic (XPS) and Fourier transform infrared spectroscopy (FTIR) revealed the mechanism behind DCF removal by FCS-PD.
Developing robust and effective adsorbent for removing ubiquitous pharmaceutical diclofenac (DCF) from the aquatic environment is vitally important for environmental safety. Hence, a novel chitosan-based multilayer adsorbent (FCS-PD) with magnetic separation ability and surface functionality was successfully assembled, which had countless potential for removing contaminants from water. A series of instrumental technologies were performed to demonstrate the physicochemical properties of FCS-PD. Its adsorption performance toward DCF removal was comprehensively evaluated in synthetic water and surface water. The effects of microplastics, inorganic ions and humic acid on the adsorption were investigated. The maximum adsorption capacity of FCS-PD was calculated as 434.78 mg/g under neutral conditions, exhibiting superior adsorption performance than most reported adsorbents. The DCF in surface water was practically removed at low concentration (50 mu g/L). FCS-PD presented a multistage kinetics controlled by chemisorption and intraparticle diffusion, which was emphasized by the pseudo-second-order kinetic and intra-particle diffusion analysis. After five cycles of adsorption and regeneration, the adsorption capacity only decreased by 9.9%, indicating the satisfactory regeneration of FCS-PD. The analysis of high-resolution X-ray photoelectron spectroscopic (XPS) and Fourier transform infrared spectroscopy (FTIR) revealed that the quaternary ammonium groups on the outer layer and the amino and hydroxyl groups on the chitosan layer are involved in the capture of DCF under electrostatic force and hydrogen bonding. (C) 2020 Elsevier B.V. All rights reserved.

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