Chemical-free fabrication of carbon fiber aerogels from egg boxes for the removal of pharmaceutically active compounds in aqueous solution
The presence of pharmaceuticals and personal care products (PPCPs) in aquatic environments extremely concerns to human health and the ecosystem; thus, their removal is essential. This work produced carbon fiber aerogels from egg box waste using a chemical-free fabrication process. The pyrolyzed egg...
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Published in: | Journal of water process engineering Vol. 53; p. 103801 |
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Main Authors: | , , , , , |
Format: | Journal Article |
Language: | English |
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Elsevier Ltd
01-07-2023
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Abstract | The presence of pharmaceuticals and personal care products (PPCPs) in aquatic environments extremely concerns to human health and the ecosystem; thus, their removal is essential. This work produced carbon fiber aerogels from egg box waste using a chemical-free fabrication process. The pyrolyzed egg box aerogel (PEBA) exhibited three-dimensional interconnected carbon nanofibers with high surface area and pore volume. The adsorption capacity and removal efficiency of four PPCPs, namely, diclofenac (DIC), caffeine (CF), tetracycline (TC), and ciprofloxacin (CIP), from water were high and comparable to other carbon-based adsorbents, and the adsorption time was much faster (within 20 min). The Redlich-Peterson and the pseudo-second-order models were the best-fitted isotherm and kinetic models, respectively, which imply multilayer adsorption at high concentrations and the chemisorption process. Furthermore, mechanisms responsible for the adsorption of all PPCPs were elucidated. PEBA was applied in the fixed-bed column experiment to mimic the continuous adsorption process. In addition, PEBA was recyclable after low-temperature heat treatment. The adsorption capacity (8.1 mg/g) and removal efficiency (94.03 %) for TC was still high after three cycles. Metabolomics analysis revealed that no secondary pollution is released into water after thermal treatment. Therefore, PEBA has the potential as an efficient adsorbent for removing PPCPs from water.
•Green fabrication of carbon fiber aerogel adsorbent from egg box wastes.•Efficient adsorption of 4 common PPCP compounds: DIC, CF, TC, and CIP.•High absorption capacity, high removal efficiency and fast adsorption time.•Fixed-bed column experiments to mimic continuous industrial-scale adsorption.•Recyclable after low-temperature heat treatment without secondary pollution. |
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AbstractList | The presence of pharmaceuticals and personal care products (PPCPs) in aquatic environments extremely concerns to human health and the ecosystem; thus, their removal is essential. This work produced carbon fiber aerogels from egg box waste using a chemical-free fabrication process. The pyrolyzed egg box aerogel (PEBA) exhibited three-dimensional interconnected carbon nanofibers with high surface area and pore volume. The adsorption capacity and removal efficiency of four PPCPs, namely, diclofenac (DIC), caffeine (CF), tetracycline (TC), and ciprofloxacin (CIP), from water were high and comparable to other carbon-based adsorbents, and the adsorption time was much faster (within 20 min). The Redlich-Peterson and the pseudo-second-order models were the best-fitted isotherm and kinetic models, respectively, which imply multilayer adsorption at high concentrations and the chemisorption process. Furthermore, mechanisms responsible for the adsorption of all PPCPs were elucidated. PEBA was applied in the fixed-bed column experiment to mimic the continuous adsorption process. In addition, PEBA was recyclable after low-temperature heat treatment. The adsorption capacity (8.1 mg/g) and removal efficiency (94.03 %) for TC was still high after three cycles. Metabolomics analysis revealed that no secondary pollution is released into water after thermal treatment. Therefore, PEBA has the potential as an efficient adsorbent for removing PPCPs from water.
•Green fabrication of carbon fiber aerogel adsorbent from egg box wastes.•Efficient adsorption of 4 common PPCP compounds: DIC, CF, TC, and CIP.•High absorption capacity, high removal efficiency and fast adsorption time.•Fixed-bed column experiments to mimic continuous industrial-scale adsorption.•Recyclable after low-temperature heat treatment without secondary pollution. |
ArticleNumber | 103801 |
Author | Pinitsoontorn, Supree Hazrati, Hossein Ieamviteevanich, Pimchanok Ding, Ling Daneshvar, Ehsan Bhatnagar, Amit |
Author_xml | – sequence: 1 givenname: Pimchanok surname: Ieamviteevanich fullname: Ieamviteevanich, Pimchanok organization: Department of Separation Science, LUT School of Engineering Science, LUT University, Sammonkatu 12, FI-50130 Mikkeli, Finland – sequence: 2 givenname: Ehsan surname: Daneshvar fullname: Daneshvar, Ehsan organization: Department of Separation Science, LUT School of Engineering Science, LUT University, Sammonkatu 12, FI-50130 Mikkeli, Finland – sequence: 3 givenname: Supree surname: Pinitsoontorn fullname: Pinitsoontorn, Supree email: psupree@kku.ac.th organization: Materials Science and Nanotechnology Program, Department of Physics, Faculty of Science, Khon Kaen University, Khon Kaen 40002, Thailand – sequence: 4 givenname: Hossein surname: Hazrati fullname: Hazrati, Hossein organization: Department of Forensic Medicine, Aarhus University, Aarhus N 8200, Denmark – sequence: 5 givenname: Ling surname: Ding fullname: Ding, Ling organization: Department of Biotechnology and Biomedicine, Technical University of Denmark, Søltofts Plads, Building 221, 2800 Kgs. Lyngby, Denmark – sequence: 6 givenname: Amit surname: Bhatnagar fullname: Bhatnagar, Amit organization: Department of Separation Science, LUT School of Engineering Science, LUT University, Sammonkatu 12, FI-50130 Mikkeli, Finland |
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Keywords | Green fabrication Adsorption Fixed-bed column Carbon fiber Pharmaceuticals |
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