Comparison of sulfamethoxazole adsorption by activated carbon and biochar in seawater

Antibiotics, a type of emerging contaminants in marine environment, have posed serious threats to human health and ecological function. Biochar has been widely used in the remediation of multiple pollutants due to low cost and good adsorption characteristics. However, the adsorption characteristics...

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Main Authors: Meng Wei, Shao Mengying, Shi Mei
Format: Article
Language:English
Published: EDP Sciences 2021-01-01
Series:E3S Web of Conferences
Online Access:https://www.e3s-conferences.org/articles/e3sconf/pdf/2021/27/e3sconf_ictees2021_02065.pdf
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spelling doaj-3becd5188616403a9a5f334856b781152021-05-04T12:18:26ZengEDP SciencesE3S Web of Conferences2267-12422021-01-012510206510.1051/e3sconf/202125102065e3sconf_ictees2021_02065Comparison of sulfamethoxazole adsorption by activated carbon and biochar in seawaterMeng WeiShao MengyingShi MeiAntibiotics, a type of emerging contaminants in marine environment, have posed serious threats to human health and ecological function. Biochar has been widely used in the remediation of multiple pollutants due to low cost and good adsorption characteristics. However, the adsorption characteristics of biochar for antibiotics in seawater are still unclear. Therefore, a coconut shell activated carbon (AC) and a sludge biochar produced at 700 °C (SB700) were selected to carry out batch adsorption experiments of sulfamethoxazole (SMX) under different adsorbent dosage and different initial concentration of SMX. These results showed that the maximum removal rate (R) of AC and SB700 was 99.9% and 97.9%, the maximum adsorption capacity (Qe) was 13.7 mg g-1 and 1.6 mg g-1, and the maximum adsorption coefficient (Kd) was 2142 L g-1 and 5.1 L g-1, respectively. Compared with SB700, AC showed the excellent performance in SMX adsorption. This study provided theoretical support and experimental basis for the development of highly efficient antibiotic adsorbents in marine ecosystem.https://www.e3s-conferences.org/articles/e3sconf/pdf/2021/27/e3sconf_ictees2021_02065.pdf
collection DOAJ
language English
format Article
sources DOAJ
author Meng Wei
Shao Mengying
Shi Mei
spellingShingle Meng Wei
Shao Mengying
Shi Mei
Comparison of sulfamethoxazole adsorption by activated carbon and biochar in seawater
E3S Web of Conferences
author_facet Meng Wei
Shao Mengying
Shi Mei
author_sort Meng Wei
title Comparison of sulfamethoxazole adsorption by activated carbon and biochar in seawater
title_short Comparison of sulfamethoxazole adsorption by activated carbon and biochar in seawater
title_full Comparison of sulfamethoxazole adsorption by activated carbon and biochar in seawater
title_fullStr Comparison of sulfamethoxazole adsorption by activated carbon and biochar in seawater
title_full_unstemmed Comparison of sulfamethoxazole adsorption by activated carbon and biochar in seawater
title_sort comparison of sulfamethoxazole adsorption by activated carbon and biochar in seawater
publisher EDP Sciences
series E3S Web of Conferences
issn 2267-1242
publishDate 2021-01-01
description Antibiotics, a type of emerging contaminants in marine environment, have posed serious threats to human health and ecological function. Biochar has been widely used in the remediation of multiple pollutants due to low cost and good adsorption characteristics. However, the adsorption characteristics of biochar for antibiotics in seawater are still unclear. Therefore, a coconut shell activated carbon (AC) and a sludge biochar produced at 700 °C (SB700) were selected to carry out batch adsorption experiments of sulfamethoxazole (SMX) under different adsorbent dosage and different initial concentration of SMX. These results showed that the maximum removal rate (R) of AC and SB700 was 99.9% and 97.9%, the maximum adsorption capacity (Qe) was 13.7 mg g-1 and 1.6 mg g-1, and the maximum adsorption coefficient (Kd) was 2142 L g-1 and 5.1 L g-1, respectively. Compared with SB700, AC showed the excellent performance in SMX adsorption. This study provided theoretical support and experimental basis for the development of highly efficient antibiotic adsorbents in marine ecosystem.
url https://www.e3s-conferences.org/articles/e3sconf/pdf/2021/27/e3sconf_ictees2021_02065.pdf
work_keys_str_mv AT mengwei comparisonofsulfamethoxazoleadsorptionbyactivatedcarbonandbiocharinseawater
AT shaomengying comparisonofsulfamethoxazoleadsorptionbyactivatedcarbonandbiocharinseawater
AT shimei comparisonofsulfamethoxazoleadsorptionbyactivatedcarbonandbiocharinseawater
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