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Removal of ibuprofen from aqueous media by adsorption: A comprehensive review

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SCIENCE OF THE TOTAL ENVIRONMENT
卷 780, 期 -, 页码 -

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ELSEVIER
DOI: 10.1016/j.scitotenv.2021.146608

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Adsorption; Biosorption; Environmental pollution; Ibuprofen; Water treatment

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This paper reviews empirical findings on the adsorption of ibuprofen (IBP) from aqueous media over the past decade, highlighting carbon-based adsorbents as the best choice with a maximum adsorption capacity of 496.1 mg/g. The uptake mechanism involves hydrophobic interactions, pi-pi stacking, among others. Future research should focus on adsorbent disposal, process improvement, scale-up, industrial applications, and practical utilization to enhance sustainable water resource management.
Ibuprofen (IBP) is a non-steroidal anti-inflammatory drug released into the environment through hospital and medical effluents, pharmaceutical wastewater and veterinary use. The aim of this paper is to review the empirical findings on the adsorption of IBP from aqueous media. A preliminary ecotoxicological assessment confirmed the environmental risk of IBP in the aqueous environment. Open literature works considered in this review were for the past decade (2010-2020). Carbon-based adsorbents are the best class of adsorbent for the uptake of IBP and the highest reported maximum adsorption capacity (q(max)) for IBP is 496.1 mg/g by SWCNTs. The range of adsorption capacities for IBP uptake in this review is between 0.0496 and 496.1 mg/g. The mechanism of uptake is majorly by hydrophobic interactions, pi-pi stacking, hydrogen bonds, electrostatic interactions and dipole-dipole interaction. IBP uptake was best fit to a wide variety of isotherm models but was well suited to the pseudo-second order kinetics model. The thermodynamics of IBP uptake depends majorly on the nature of the adsorbent and desorption from the solid phase is based on an appropriate choice of the eluent. Knowledge gaps were observed in used adsorbent disposal and process improvement. In the future, interest would increase in scale-up, industrial applications and practical utilisation of the research findings which would help in sustainable water resource management. (C) 2021 Elsevier B.V. All rights reserved.

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