4.7 Article

Sorption/desorption of aqueous mercury ions [Hg2+] onto/from sulfur-impregnated attapulgite: Process optimization, co-existing anions and regeneration studies

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ELSEVIER
DOI: 10.1016/j.jtice.2021.02.015

关键词

Mercury (Hg2+); Attapulgite (ATP); Sulphur impregnated attapulgite (ATPS); Sorption-desorption; Kinetics and isotherm

资金

  1. Nantong Planned Projects for Basic Science Research [JC2019153]
  2. National Natural Science Foundation of China [51978654]
  3. Qing Lan Project of Jiangsu Province

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This study proposed a sorption and desorption approach of aqueous mercury ion on sulfur impregnated attapulgite adsorbent. Morphological characterization confirmed the mesoporous nature of ATPS-adsorbents. Batch adsorption tests illustrated the best adsorbent (ATPS-500) produced at 500 degrees C with the highest equilibrium uptake of Hg2+.
Present study proposed a sorption and desorption approach of aqueous mercury ion (Hg2+) on sulfur impregnated attapulgite (ATPS) adsorbent. Morphological characterization of natural and impregnated ATP confirmed the mesoporous nature of ATPS-adsorbents. The presence of various types of functional groups on the surface of ATPS was confirmed by using the zeta-potential measurement, X-ray fluorescence (XRF), and FT-IR analysis. Batch adsorption tests were carried out to detect the optimum condition of temperature for sulfur impregnation, and the results illustrated that the best adsorbent (ATPS-500) produced via the impregnation at 500 degrees C, with the highest equilibrium uptake of Hg2+ at initial pH 7. Different parameters like solution pHo, initial concentration of mercury (C-o), temperature (T), contact time (t) and the effect of co-existing ions were optimized. Optimum pH and equilibrium contact time at the optimum dose of adsorbent (m) = 0.02 g in 50 mL and C-o = 2.0 mg L-1 were found to be pH similar to 5 and 24 hat T = 313 K for ATPS-500.The best representation of adsorption kinetic was followed by the pseudo -first order kinetic model. The adsorption of Hg(2+)ions onto ATPS-500 was found to be endothermic. The heat of adsorption and changes in the entropy of Hg(2+)ions sorption on ATPS-500 were determined as 10.35 kJ mol (1) and 0.16 kJ mol (1) K (1), respectively. Thermal regeneration represented that ATPS-500 was used for five desorption-sorption cycles with excellent efficiency of Hg(2+)in each cycle. (C) 2021 Taiwan Institute of Chemical Engineers. Published by Elsevier B.V. All rights reserved.

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