Study of Adsorption Efficiency of Lignite, Biochar, and Polymeric Nanofibers for Veterinary Drugs in WWTP Effluent Water
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Published:2023-04
Issue:4
Volume:234
Page:
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ISSN:0049-6979
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Container-title:Water, Air, & Soil Pollution
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language:en
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Short-container-title:Water Air Soil Pollut
Author:
Vrchovecká StanislavaORCID, Asatiani Nikifor, Antoš Vojtěch, Wacławek Stanisław, Hrabák Pavel
Abstract
AbstractThe increased consumption, overuse, and subsequent difficult removal of pharmaceuticals using conventional processes lead to their rising prevalence in the environment. Adsorption belongs to the most efficient approaches to pharmaceuticals’ removal from wastewater. This study provides insight into the sorption properties of biochar, lignite, and polyamide nanofibers (PA-nanofibers) for sulfamethoxazole, trimethoprim, clarithromycin, azithromycin, and amoxicillin in ultrapure and wastewater treatment plant (WWTP) effluent water. The negative effect of WWTP effluent water was reflected in a reduction of the sorption capacity of biochar by 6.31–72.15%, 25.58–98.55% for lignite, and 4.21–67.71% for PA-nanofibers. Simultaneously, this study investigates the impact of the experimental setup. The sorption capacities were recorded in the range from 0.65 to 2.84 mg g−1 for biochar, 0.04 to 75.73 μg·g−1 for lignite, and 0.53 to 30.54 μg·g−1 for PA-nanofibers during the fixed-bed column tests with WWTP effluent water. Based on the results, biochar appears to be a suitable sorbent for selected pharmaceuticals in field conditions with running water. Lignite and PA represent complementary treatment technology or can act as a carrier for microbial degraders. Performed batch tests with ultrapure and WWTP effluent water and subsequent column tests highlighted the importance of conducting tests with the appropriate matrix and experimental setup to gain a realistic insight into the behavior of the sorbents under environmentally relevant conditions.
Graphical Abstract
Funder
Ministerstvo Zemědělství Technická Univerzita v Liberci Technical University of Liberec
Publisher
Springer Science and Business Media LLC
Subject
Pollution,Water Science and Technology,Ecological Modeling,Environmental Chemistry,Environmental Engineering
Reference67 articles.
1. Abdolmaleki, A. Y., Zilouei, H., Khorasani, S. N., & Zargoosh, K. (2018). Adsorption of tetracycline from water using glutaraldehyde-crosslinked electrospun nanofibers of chitosan/poly(vinyl alcohol). Water Science and Technology, 77, 1324–1335. https://doi.org/10.2166/wst.2018.010 2. Adriaensens, P., Pollaris, A., Carleer, R., Vanderzande, D., Gelan, J., Litvinov, V. M., & Tijssen, J. (2001). Quantitative magnetic resonance imaging study of water uptake by polyamide 4,6. Polymer, 42, 7943–7952. https://doi.org/10.1016/S0032-3861(01)00314-7 3. Aguilar-Pérez, K. M., Avilés-Castrillo, J. I., & Ruiz-Pulido, G. (2020). Nano-sorbent materials for pharmaceutical-based wastewater effluents - An overview. Case Studies in Chemical and Environmental Engineering, 2, 100028. https://doi.org/10.1016/j.cscee.2020.100028 4. Ahmad, A., Khan, N., Giri, B. S., Chowdhary, P., & Chaturvedi, P. (2020). Removal of methylene blue dye using rice husk, cow dung and sludge biochar: Characterization, application, and kinetic studies. Bioresource Technology, 306, 123202. https://doi.org/10.1016/j.biortech.2020.123202 5. Aivalioti, M., Pothoulaki, D., Papoulias, P., & Gidarakos, E. (2012). Removal of BTEX, MTBE and TAME from aqueous solutions by adsorption onto raw and thermally treated lignite. Journal of Hazardous Materials, 207, 136–146. https://doi.org/10.1016/j.jhazmat.2011.04.084
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