Sorptive elimination of ibuprofen using activated biochar: modelling, non-linear isotherm and kinetic, cost assessment and toxicity analysis

被引:0
作者
Sumona Show
Somnath Chowdhury
Moumita Maji
Priyanka Sarkar
Monidipa Ghosh
Mika Sillanpää
Gopinath Halder
机构
[1] National Institute of Technology Durgapur,Department of Chemical Engineering
[2] National Institute of Technology Durgapur,Department of Biotechnology
[3] King Saud University,Chemistry Department, College of Science
来源
Biomass Conversion and Biorefinery | 2024年 / 14卷
关键词
Adsorption; Biochar; Ibuprofen; Optimization; Toxicity analysis; Water treatment;
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学科分类号
摘要
The prevalence of numerous pharmaceuticals in sewage effluent discharges has significantly decreased the life and quality of water bodies. Ibuprofen (IBP), an acidic non-steroid drug, is one such pharmaceutical being widely used for anti-inflammatory properties. The present work investigated the sorption efficiency of base activated biochar synthesized from green waste Tamarindus indica seeds for removing IBP from simulated water. The biochar was instrumentally analyzed by Fourier transform infrared spectroscopy (FTIR), energy-dispersive X-ray analysis (EDX), and scanning electron microscopy (SEM). The influence of six operational parameters, viz., adsorbate concentration (initial), dose of adsorbent, pH, temperature, shaking speed, and contact time on the adsorption of IBP has been conducted using batch experiments. With concentration of 15 mg/L, pH 3, temp of 25 °C, sorbent dose of 3.33 g/L, speed of 150 rpm, and interaction period of 5 h, the maximum removal% of IBP achieved was 91.09%. The process of adsorption was optimized using the central composite design (CCD) method of response surface methodology (RSM) and artificial neural network (ANN). The non-linearized technique using isotherm and kinetic models was used to validate the process efficiency of IBP removal. Langmuir isotherm and pseudo-second-order kinetic models were found to be best fitted with non-linear analysis. The viability of the sorptive expulsion process was confirmed by thermodynamic studies. Reusability study of spent biochar showed its IBP removal ability even after several cycles of use. The maximum adsorption capacity was noted as 77.51 mg/g. The cost of produced adsorbent was competitive. The microbial toxicity bioassay of the solution before and after IBP treatment showed no adverse effects; thus, it can be discharged in the environment. Hence, the modified biochar synthesized from agrowaste could be a viable cost-effective adsorbent towards IBP laden wastewater treatment.
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页码:11579 / 11600
页数:21
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[11]  
Mestre AS(2005)Decomposition of ibuprofen in water via an electrochemical process with nano-sized carbon black-coated carbon cloth as oxygen-permeable cathode integrated with ultrasound Water Res 26 28584-28592
[12]  
Pires J(2019)Removal of cosmetic ingredients and pharmaceuticals in sewage primary treatment Environ Sci Pollut Res 92 158-172
[13]  
Nogueira JMF(2016)Adsorption of a textile dye onto piaçava fibers: kinetic, equilibrium, thermodynamics, and application in simulated effluents Ecol Eng 6 6807-6815
[14]  
Carvalho AP(2018)Biosorptive uptake of ibuprofen by chemically modified J Environ Chem Eng 126 193-204
[15]  
Pinacho P(2019) derived biochar: equilibrium, kinetics, thermodynamics and modelling Process Saf Environ Prot 83 111-122
[16]  
Krin A(2020)Removal of acetaminophen and ibuprofen from aqueous solutions by activated carbon derived from Water Sci Technol 22 83-94
[17]  
Pe’rez C(2021) (Oak) acorn as a low-cost biosorbent J Ecol Eng 147 942-964
[18]  
Zinn S(2021)Linearity and non-linearity analysis of isotherms and kinetics for ibuprofen remotion using superheated steam and acid modified biochar Process Saf Environ Prot 97 949-956
[19]  
Lo’pez JC(2006)A renewable, sustainable and low-cost adsorbent for ibuprofen removal Bioresour Technol 10 1204-1218
[20]  
Blanco S(2020)The removal of ibuprofen drugs residues from municipal wastewater by Moringa oleifera seeds RSC Adv 665 438-452