LAPSE:2023.24879
Published Article

LAPSE:2023.24879
Synthesis and Characterization of Magnetic Xerogel Monolith as an Adsorbent for As(V) Removal from Groundwater
March 28, 2023
Abstract
Arsenic contamination of groundwater is still a global problem due to the toxicity at low dose on human health confirmed by epidemiological studies. Magnetic xerogel monoliths (MXs) were synthesized by the sol-gel polymerization using resorcinol, formaldehyde, alkaline catalyst and magnetite. The varying molar ratios of magnetite and resorcinol (M/R) in the gel were evaluated for As(V) removal from groundwater. The surface chemistry, structure and morphology of MXs related to arsenic adsorption were characterized by X-ray diffraction, scanning electron microscopy, energy-dispersive X-ray spectroscopy, Fourier transform infrared spectroscopy and point of zero charge. Batch adsorption experiments were carried out to investigate the effects of Fe contents, initial pH and adsorbent dose on As(V) removal performance. The MXs with molar ratio of M/R at 0.15 gave the maximum As(V) adsorption capacity and removal with values of 62.8 µg/g and 86.7%, respectively. The adsorption data were well described by the Elovich equation of the kinetic model and the Freundlich isotherm. The thermodynamic studies demonstrated that the adsorption process was endothermic and spontaneous in nature. MXs showed to be a good alternative for As(V) removal from groundwater and achieving the efficient desorption, and thus fulfilled the Mexican standard for drinking water.
Arsenic contamination of groundwater is still a global problem due to the toxicity at low dose on human health confirmed by epidemiological studies. Magnetic xerogel monoliths (MXs) were synthesized by the sol-gel polymerization using resorcinol, formaldehyde, alkaline catalyst and magnetite. The varying molar ratios of magnetite and resorcinol (M/R) in the gel were evaluated for As(V) removal from groundwater. The surface chemistry, structure and morphology of MXs related to arsenic adsorption were characterized by X-ray diffraction, scanning electron microscopy, energy-dispersive X-ray spectroscopy, Fourier transform infrared spectroscopy and point of zero charge. Batch adsorption experiments were carried out to investigate the effects of Fe contents, initial pH and adsorbent dose on As(V) removal performance. The MXs with molar ratio of M/R at 0.15 gave the maximum As(V) adsorption capacity and removal with values of 62.8 µg/g and 86.7%, respectively. The adsorption data were well described by the Elovich equation of the kinetic model and the Freundlich isotherm. The thermodynamic studies demonstrated that the adsorption process was endothermic and spontaneous in nature. MXs showed to be a good alternative for As(V) removal from groundwater and achieving the efficient desorption, and thus fulfilled the Mexican standard for drinking water.
Record ID
Keywords
Adsorption, arsenic removal, groundwater, magnetic, xerogel
Subject
Suggested Citation
Khamkure S, Garrido-Hoyos SE, Gamero-Melo P, Reyes-Rosas A. Synthesis and Characterization of Magnetic Xerogel Monolith as an Adsorbent for As(V) Removal from Groundwater. (2023). LAPSE:2023.24879
Author Affiliations
Khamkure S: CONACyT-Instituto Mexicano de Tecnología del Agua, Jiutepec, Morelos 62550, Mexico
Garrido-Hoyos SE: Instituto Mexicano de Tecnología del Agua, Jiutepec, Morelos 62550, Mexico
Gamero-Melo P: CINVESTAV IPN-Unidad Saltillo, Ramos Arizpe, Coahuila 25900, Mexico
Reyes-Rosas A: Centro de Investigación en Ciencias-IICBA, Universidad Autónoma del Estado de Morelos, Cuernavaca, Morelos 62209, Mexico
Garrido-Hoyos SE: Instituto Mexicano de Tecnología del Agua, Jiutepec, Morelos 62550, Mexico
Gamero-Melo P: CINVESTAV IPN-Unidad Saltillo, Ramos Arizpe, Coahuila 25900, Mexico
Reyes-Rosas A: Centro de Investigación en Ciencias-IICBA, Universidad Autónoma del Estado de Morelos, Cuernavaca, Morelos 62209, Mexico
Journal Name
Processes
Volume
9
Issue
2
First Page
386
Year
2021
Publication Date
2021-02-20
ISSN
2227-9717
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Original Submission
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PII: pr9020386, Publication Type: Journal Article
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LAPSE:2023.24879
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https://doi.org/10.3390/pr9020386
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Mar 28, 2023
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