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Published July 2020 | Version v1
Journal article

Carbon material–immobilized ionic liquids were applied on absorption of Hg2+ from water phase

  • 1. Northeast Forestry University. Key Laboratory of Bio-based Material Science and Technology (Ministry of Education), College of Material Science and Engineering (China)
  • 2. Technology Center of Harbin Customs District of the People's Republic of China (China)

Description

In this study, several immobilized ionic liquid adsorbents on carbon materials were synthesized with impregnation method. The carrier materials were activated carbon and three kinds of multi-walled carbon nanotubes. And the synthetic adsorbents immobilized different kinds of ionic liquids were characterized by Boehm titration, FT-IR, XPS, TG, and BET analysis, respectively. Finally, carbon materials after [C4mim]HSO4 immobilization were selected as adsorbent to remove Hg2+ from water phase. The optimum conditions of adsorption test of ionic liquid immobilized by multi-walled carbon nanotubes were as follows: the initial concentration of Hg2+ was 400 mg/L, the adsorbent addition amount was 40 mg, the temperature was 20 °C, the reaction time was 200 min, the removal rate of Hg2+ peaked at 62.95%, the adsorption capacity was reached 79.00 mg/g. The optimum conditions of adsorption test of ionic liquid immobilized by activated carbon were as follows: the initial concentration of Hg2+ was 300 mg/L, the adsorbent addition amount was 0.2 g, the temperature was 20 °C, pH was 2.0, the reaction time was 100 min, the removal rate of Hg2+ was more than 99%, the adsorption capacity was 118.65 mg/g. The adsorption isotherm fitting study found that the adsorption of adsorbent on Hg2+ was more in line with the Langmuir model, and the adsorption kinetics study shows that the adsorption process is consistent with the pseudo-second-order kinetic equation. The results of kinetic analysis are further verified by thermodynamic analysis.

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Publishing Information

Journal Title
Environmental Science and Pollution Research International
Journal Volume
27
Journal Issue
21
Journal Page Range
p. 26882-26904
ISSN
0944-1344
CODEN
ESPLEC

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Copyright (c) 2020 © Springer-Verlag GmbH Germany, part of Springer Nature 2020