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Effective Removal of Glyphosate from Aqueous Systems Using Synthesized PEG-Coated Calcium Peroxide Nanoparticles: Kinetics Study, H(2)O(2) Release Performance and Degradation Pathways

Glyphosate (N-phosphonomethyl glycine) is a non-selective, broad-spectrum organophosphate herbicide. Its omnipresent application with large quantity has made glyphosate as a problematic contaminant in water. Therefore, an effective technology is urgently required to remove glyphosate and its metabol...

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Autores principales: Li, Fan, Choong, Thomas Shean Yaw, Abdullah, Luqman Chuah, Md. Jamil, Siti Nurul Ain, Amerhaider Nuar, Nurul Nazihah
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9919818/
https://www.ncbi.nlm.nih.gov/pubmed/36772076
http://dx.doi.org/10.3390/polym15030775
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author Li, Fan
Choong, Thomas Shean Yaw
Abdullah, Luqman Chuah
Md. Jamil, Siti Nurul Ain
Amerhaider Nuar, Nurul Nazihah
author_facet Li, Fan
Choong, Thomas Shean Yaw
Abdullah, Luqman Chuah
Md. Jamil, Siti Nurul Ain
Amerhaider Nuar, Nurul Nazihah
author_sort Li, Fan
collection PubMed
description Glyphosate (N-phosphonomethyl glycine) is a non-selective, broad-spectrum organophosphate herbicide. Its omnipresent application with large quantity has made glyphosate as a problematic contaminant in water. Therefore, an effective technology is urgently required to remove glyphosate and its metabolites from water. In this study, calcium peroxide nanoparticles (nCPs) were functioned as an oxidant to produce sufficient hydroxyl free radicals (·OH) with the presence of Fe(2+) as a catalyst using a Fenton-based system. The nCPs with small particle size (40.88 nm) and high surface area (28.09 m(2)/g) were successfully synthesized via a co-precipitation method. The synthesized nCPs were characterized using transform infrared spectroscopy (FTIR), X-ray diffractometry (XRD), Brunauer–Emmett–Teller analysis (BET), dynamic light scattering (DLS), and field emission scanning electron microscopy (FESEM) techniques. Under the given conditions (pH = 3.0, initial nCPs dosage = 0.2 g, Ca(2+)/Fe(2+) molar ratio = 6, the initial glyphosate concentration = 50 mg/L, RT), 99.60% total phosphorus (TP) removal and 75.10% chemical oxygen demand (COD) removal were achieved within 75 min. The degradation process fitted with the Behnajady–Modirshahla–Ghanbery (BMG) kinetics model. The H(2)O(2) release performance and proposed degradation pathways were also reported. The results demonstrated that calcium peroxide nanoparticles are an efficient oxidant for glyphosate removal from aqueous systems.
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spelling pubmed-99198182023-02-12 Effective Removal of Glyphosate from Aqueous Systems Using Synthesized PEG-Coated Calcium Peroxide Nanoparticles: Kinetics Study, H(2)O(2) Release Performance and Degradation Pathways Li, Fan Choong, Thomas Shean Yaw Abdullah, Luqman Chuah Md. Jamil, Siti Nurul Ain Amerhaider Nuar, Nurul Nazihah Polymers (Basel) Article Glyphosate (N-phosphonomethyl glycine) is a non-selective, broad-spectrum organophosphate herbicide. Its omnipresent application with large quantity has made glyphosate as a problematic contaminant in water. Therefore, an effective technology is urgently required to remove glyphosate and its metabolites from water. In this study, calcium peroxide nanoparticles (nCPs) were functioned as an oxidant to produce sufficient hydroxyl free radicals (·OH) with the presence of Fe(2+) as a catalyst using a Fenton-based system. The nCPs with small particle size (40.88 nm) and high surface area (28.09 m(2)/g) were successfully synthesized via a co-precipitation method. The synthesized nCPs were characterized using transform infrared spectroscopy (FTIR), X-ray diffractometry (XRD), Brunauer–Emmett–Teller analysis (BET), dynamic light scattering (DLS), and field emission scanning electron microscopy (FESEM) techniques. Under the given conditions (pH = 3.0, initial nCPs dosage = 0.2 g, Ca(2+)/Fe(2+) molar ratio = 6, the initial glyphosate concentration = 50 mg/L, RT), 99.60% total phosphorus (TP) removal and 75.10% chemical oxygen demand (COD) removal were achieved within 75 min. The degradation process fitted with the Behnajady–Modirshahla–Ghanbery (BMG) kinetics model. The H(2)O(2) release performance and proposed degradation pathways were also reported. The results demonstrated that calcium peroxide nanoparticles are an efficient oxidant for glyphosate removal from aqueous systems. MDPI 2023-02-03 /pmc/articles/PMC9919818/ /pubmed/36772076 http://dx.doi.org/10.3390/polym15030775 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Li, Fan
Choong, Thomas Shean Yaw
Abdullah, Luqman Chuah
Md. Jamil, Siti Nurul Ain
Amerhaider Nuar, Nurul Nazihah
Effective Removal of Glyphosate from Aqueous Systems Using Synthesized PEG-Coated Calcium Peroxide Nanoparticles: Kinetics Study, H(2)O(2) Release Performance and Degradation Pathways
title Effective Removal of Glyphosate from Aqueous Systems Using Synthesized PEG-Coated Calcium Peroxide Nanoparticles: Kinetics Study, H(2)O(2) Release Performance and Degradation Pathways
title_full Effective Removal of Glyphosate from Aqueous Systems Using Synthesized PEG-Coated Calcium Peroxide Nanoparticles: Kinetics Study, H(2)O(2) Release Performance and Degradation Pathways
title_fullStr Effective Removal of Glyphosate from Aqueous Systems Using Synthesized PEG-Coated Calcium Peroxide Nanoparticles: Kinetics Study, H(2)O(2) Release Performance and Degradation Pathways
title_full_unstemmed Effective Removal of Glyphosate from Aqueous Systems Using Synthesized PEG-Coated Calcium Peroxide Nanoparticles: Kinetics Study, H(2)O(2) Release Performance and Degradation Pathways
title_short Effective Removal of Glyphosate from Aqueous Systems Using Synthesized PEG-Coated Calcium Peroxide Nanoparticles: Kinetics Study, H(2)O(2) Release Performance and Degradation Pathways
title_sort effective removal of glyphosate from aqueous systems using synthesized peg-coated calcium peroxide nanoparticles: kinetics study, h(2)o(2) release performance and degradation pathways
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9919818/
https://www.ncbi.nlm.nih.gov/pubmed/36772076
http://dx.doi.org/10.3390/polym15030775
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