4.7 Article

Adsorption of low-concentration mercury in water by 3D cyclodextrin/graphene composites: Synergistic effect and enhancement mechanism

Journal

ENVIRONMENTAL POLLUTION
Volume 252, Issue -, Pages 1133-1141

Publisher

ELSEVIER SCI LTD
DOI: 10.1016/j.envpol.2019.06.034

Keywords

3D graphene; beta-Cyclodextrin; Low-concentration mercury; Synergistic adsorption

Funding

  1. National Natural Science Foundation of China [21836002]
  2. Guangdong Innovative and Entrepreneurial Research Team Program [2016ZT06N569]
  3. China Postdoctoral Science Foundation [2018M643091]
  4. State Key Laboratory of Pulp and Paper Engineering of South China University of Technology [2018TS01]

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The efficient removal of mercury from aqueous media remains a severe challenge in ensuring environmental safety, especially for low-concentration mercury, which requires adsorbents with high mercury affinity. In this work, we reported a nanocomposite of beta-cyclodextrin and three-dimensional graphene (3D CD@RGO) to enhance the adsorption affinity and capacity for mercury with low concentrations. Characterization of the nanocomposite revealed that cyclodextrin was well dispersed on the 3D graphene support structure to provide highly exposed hydroxyl groups. Adsorption experiments showed that CD@RGO exhibited different adsorption behaviors for mercury within different concentration ranges of 0.2-4.0 mg/L and 4.0-10.0 mg/L, and the adsorption affinity for the former range (K-L = 10.05 L/mg) was 1.5 times higher than that for the latter range (K-L = 6.69 L/mg). Moreover, CD@RGO had a high adsorption efficiency of 96.6% with a superb adsorption affinity (172.09 L/g) at C-e = 0.01 mg/L, which is 6.70 and 41.25 times higher than that of RGO and RCD (physical mixture of RGO and cyclodextrin), respectively, indicating a synergistic effect of CD@RGO for mercury adsorption. This enhancement can be attributed to the transformation of the adsorption mechanism from the outer-sphere force of electrostatic interaction in RGO to the inner-sphere surface complexation in CD@RGO. (C) 2019 Elsevier Ltd. All rights reserved.

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