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Tailoring a novel hierarchical cheese-like porous biochar from algae residue to boost sulfathiazole removal

Aquatic pollution caused by antibiotics poses a significant threat to human health and the ecosystem. Inspired from “Emmental Cheese” that owns lots of natural pores, we here fabricated a hierarchical cheese-like porous Spirulina residue biochar (KSBC) activated by KHCO(3) for efficiently boosting t...

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Autores principales: Wang, Ke, Wang, Yue, Zhang, Shiyu, Chen, Yi-di, Wang, Rupeng, Ho, Shih-Hsin
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9488017/
https://www.ncbi.nlm.nih.gov/pubmed/36159736
http://dx.doi.org/10.1016/j.ese.2022.100168
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author Wang, Ke
Wang, Yue
Zhang, Shiyu
Chen, Yi-di
Wang, Rupeng
Ho, Shih-Hsin
author_facet Wang, Ke
Wang, Yue
Zhang, Shiyu
Chen, Yi-di
Wang, Rupeng
Ho, Shih-Hsin
author_sort Wang, Ke
collection PubMed
description Aquatic pollution caused by antibiotics poses a significant threat to human health and the ecosystem. Inspired from “Emmental Cheese” that owns lots of natural pores, we here fabricated a hierarchical cheese-like porous Spirulina residue biochar (KSBC) activated by KHCO(3) for efficiently boosting the removal of sulfathiazole (STZ). Through learning form nature that the CO(2) produced by bacteria can serve as the natural pore maker (like cheese-making), KHCO(3) was thus selected as the gas generating agent in this study. The effect of adding KHCO(3) on the surface properties of KSBC was comprehensively investigated. Benefiting from the activation, the KSBC with the mass ratio of 2:1 (2K-SBC) possessed the largest specific surface areas (1100 m(2) g(−1)), which was approximately 81 times that of the original (not activated) Spirulina residue biochar (SBC) (13.56 m(2) g(−1)). Moreover, 2K-SBC exhibited the maximum adsorption capacity for STZ (218.4 mg g(−1)), dramatically higher than the SBC (25.78 mg g(−1)). The adsorption kinetics and adsorption isotherms exhibited that the adsorption behavior of 2K-SBC for STZ was consistent with the pseudo-second-order and Langmuir models. Additionally, the adsorption thermodynamics revealed that the adsorption of STZ on 2K-SBC was spontaneous and exothermic. The pore-filling and electrostatic interaction were considered the main mechanism for the adsorption of STZ on 2K-SBC, whereas the π-π electron donor-acceptor (EDA) interaction and hydrogen bond would also partially contribute to the adsorption process.
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spelling pubmed-94880172022-09-23 Tailoring a novel hierarchical cheese-like porous biochar from algae residue to boost sulfathiazole removal Wang, Ke Wang, Yue Zhang, Shiyu Chen, Yi-di Wang, Rupeng Ho, Shih-Hsin Environ Sci Ecotechnol Original Research Aquatic pollution caused by antibiotics poses a significant threat to human health and the ecosystem. Inspired from “Emmental Cheese” that owns lots of natural pores, we here fabricated a hierarchical cheese-like porous Spirulina residue biochar (KSBC) activated by KHCO(3) for efficiently boosting the removal of sulfathiazole (STZ). Through learning form nature that the CO(2) produced by bacteria can serve as the natural pore maker (like cheese-making), KHCO(3) was thus selected as the gas generating agent in this study. The effect of adding KHCO(3) on the surface properties of KSBC was comprehensively investigated. Benefiting from the activation, the KSBC with the mass ratio of 2:1 (2K-SBC) possessed the largest specific surface areas (1100 m(2) g(−1)), which was approximately 81 times that of the original (not activated) Spirulina residue biochar (SBC) (13.56 m(2) g(−1)). Moreover, 2K-SBC exhibited the maximum adsorption capacity for STZ (218.4 mg g(−1)), dramatically higher than the SBC (25.78 mg g(−1)). The adsorption kinetics and adsorption isotherms exhibited that the adsorption behavior of 2K-SBC for STZ was consistent with the pseudo-second-order and Langmuir models. Additionally, the adsorption thermodynamics revealed that the adsorption of STZ on 2K-SBC was spontaneous and exothermic. The pore-filling and electrostatic interaction were considered the main mechanism for the adsorption of STZ on 2K-SBC, whereas the π-π electron donor-acceptor (EDA) interaction and hydrogen bond would also partially contribute to the adsorption process. Elsevier 2022-03-06 /pmc/articles/PMC9488017/ /pubmed/36159736 http://dx.doi.org/10.1016/j.ese.2022.100168 Text en © 2022 The Authors https://creativecommons.org/licenses/by-nc-nd/4.0/This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Original Research
Wang, Ke
Wang, Yue
Zhang, Shiyu
Chen, Yi-di
Wang, Rupeng
Ho, Shih-Hsin
Tailoring a novel hierarchical cheese-like porous biochar from algae residue to boost sulfathiazole removal
title Tailoring a novel hierarchical cheese-like porous biochar from algae residue to boost sulfathiazole removal
title_full Tailoring a novel hierarchical cheese-like porous biochar from algae residue to boost sulfathiazole removal
title_fullStr Tailoring a novel hierarchical cheese-like porous biochar from algae residue to boost sulfathiazole removal
title_full_unstemmed Tailoring a novel hierarchical cheese-like porous biochar from algae residue to boost sulfathiazole removal
title_short Tailoring a novel hierarchical cheese-like porous biochar from algae residue to boost sulfathiazole removal
title_sort tailoring a novel hierarchical cheese-like porous biochar from algae residue to boost sulfathiazole removal
topic Original Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9488017/
https://www.ncbi.nlm.nih.gov/pubmed/36159736
http://dx.doi.org/10.1016/j.ese.2022.100168
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