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Efficient Removal 17-Estradiol by Graphene-Like Magnetic Sawdust Biochar: Preparation Condition and Adsorption Mechanism

The occurrence of environmental endocrine disrupting chemicals (EDCs) in aquatic environments has caused extensive concern. Graphene-like magnetic sawdust biochar was synthesized using potassium ferrate (K(2)FeO(4)) to make activated sawdust biochar and applied for the removal of 17-estradiol (E2)....

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Autores principales: Zhou, Yahui, Liu, Shaobo, Liu, Yunguo, Tan, Xiaofei, Liu, Ni, Wen, Jun
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7696789/
https://www.ncbi.nlm.nih.gov/pubmed/33198330
http://dx.doi.org/10.3390/ijerph17228377
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author Zhou, Yahui
Liu, Shaobo
Liu, Yunguo
Tan, Xiaofei
Liu, Ni
Wen, Jun
author_facet Zhou, Yahui
Liu, Shaobo
Liu, Yunguo
Tan, Xiaofei
Liu, Ni
Wen, Jun
author_sort Zhou, Yahui
collection PubMed
description The occurrence of environmental endocrine disrupting chemicals (EDCs) in aquatic environments has caused extensive concern. Graphene-like magnetic sawdust biochar was synthesized using potassium ferrate (K(2)FeO(4)) to make activated sawdust biochar and applied for the removal of 17-estradiol (E2). The characterization showed that the surface morphology of five graphene-like magnetic sawdust biochars prepared with different preparation conditions were quite different. The specific surface area and pore structure increased with the increment of K(2)FeO(4) addition. The results have shown that graphene-like magnetic sawdust biochar (1:1/900 °C) had the best removal on E2. The experimental results indicated that pseudo-first-order kinetic model and the Langmuir model could describe the adsorption process well, in which the equilibrium adsorption capacity (q(e,1)) of 1:1/900 °C were 59.18 mg·g(−1) obtained from pseudo-first-order kinetic model and the maximum adsorption capacity (q(max)) of 1:1/900 °C were 133.45 mg·g(−1) obtained from Langmuir model at 298K. At the same time, lower temperatures, the presence of humic acid (HA), and the presence of NaCl could be regulated to change the adsorption reaction in order to remove E2. Adsorption capacity was decreased with the increase of solution pH because pH value not only changed the surface charge of graphene-like magnetic sawdust biochar, but also affected the E2 in the water. The possible adsorption mechanism for E2 adsorption on graphene-like magnetic sawdust biochar was multifaceted, involving chemical adsorption and physical absorption, such as H-bonding, π-π interactions, micropore filling effects, and electrostatic interaction. To sum up, graphene-like magnetic sawdust biochar was found to be a promising absorbent for E2 removal from water.
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spelling pubmed-76967892020-11-29 Efficient Removal 17-Estradiol by Graphene-Like Magnetic Sawdust Biochar: Preparation Condition and Adsorption Mechanism Zhou, Yahui Liu, Shaobo Liu, Yunguo Tan, Xiaofei Liu, Ni Wen, Jun Int J Environ Res Public Health Article The occurrence of environmental endocrine disrupting chemicals (EDCs) in aquatic environments has caused extensive concern. Graphene-like magnetic sawdust biochar was synthesized using potassium ferrate (K(2)FeO(4)) to make activated sawdust biochar and applied for the removal of 17-estradiol (E2). The characterization showed that the surface morphology of five graphene-like magnetic sawdust biochars prepared with different preparation conditions were quite different. The specific surface area and pore structure increased with the increment of K(2)FeO(4) addition. The results have shown that graphene-like magnetic sawdust biochar (1:1/900 °C) had the best removal on E2. The experimental results indicated that pseudo-first-order kinetic model and the Langmuir model could describe the adsorption process well, in which the equilibrium adsorption capacity (q(e,1)) of 1:1/900 °C were 59.18 mg·g(−1) obtained from pseudo-first-order kinetic model and the maximum adsorption capacity (q(max)) of 1:1/900 °C were 133.45 mg·g(−1) obtained from Langmuir model at 298K. At the same time, lower temperatures, the presence of humic acid (HA), and the presence of NaCl could be regulated to change the adsorption reaction in order to remove E2. Adsorption capacity was decreased with the increase of solution pH because pH value not only changed the surface charge of graphene-like magnetic sawdust biochar, but also affected the E2 in the water. The possible adsorption mechanism for E2 adsorption on graphene-like magnetic sawdust biochar was multifaceted, involving chemical adsorption and physical absorption, such as H-bonding, π-π interactions, micropore filling effects, and electrostatic interaction. To sum up, graphene-like magnetic sawdust biochar was found to be a promising absorbent for E2 removal from water. MDPI 2020-11-12 2020-11 /pmc/articles/PMC7696789/ /pubmed/33198330 http://dx.doi.org/10.3390/ijerph17228377 Text en © 2020 by the authors. 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 (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Zhou, Yahui
Liu, Shaobo
Liu, Yunguo
Tan, Xiaofei
Liu, Ni
Wen, Jun
Efficient Removal 17-Estradiol by Graphene-Like Magnetic Sawdust Biochar: Preparation Condition and Adsorption Mechanism
title Efficient Removal 17-Estradiol by Graphene-Like Magnetic Sawdust Biochar: Preparation Condition and Adsorption Mechanism
title_full Efficient Removal 17-Estradiol by Graphene-Like Magnetic Sawdust Biochar: Preparation Condition and Adsorption Mechanism
title_fullStr Efficient Removal 17-Estradiol by Graphene-Like Magnetic Sawdust Biochar: Preparation Condition and Adsorption Mechanism
title_full_unstemmed Efficient Removal 17-Estradiol by Graphene-Like Magnetic Sawdust Biochar: Preparation Condition and Adsorption Mechanism
title_short Efficient Removal 17-Estradiol by Graphene-Like Magnetic Sawdust Biochar: Preparation Condition and Adsorption Mechanism
title_sort efficient removal 17-estradiol by graphene-like magnetic sawdust biochar: preparation condition and adsorption mechanism
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7696789/
https://www.ncbi.nlm.nih.gov/pubmed/33198330
http://dx.doi.org/10.3390/ijerph17228377
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