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An Insight into a Sustainable Removal of Bisphenol A from Aqueous Solution by Novel Palm Kernel Shell Magnetically Induced Biochar: Synthesis, Characterization, Kinetic, and Thermodynamic Studies

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Publisher MDPI
Date 2021 Nov 13
PMID 34771339
Citations 2
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Abstract

Recently Bisphenol A (BPA) is one of the persistent trace hazardous estrogenic contaminants in the environment, that can trigger a severe threat to humans and environment even at minuscule concentrations. Thus, this work focused on the synthesis of neat and magnetic biochar (BC) as a sustainable and inexpensive adsorbent to remove BPA from aqueous environment. Novel magnetic biochar was efficiently synthesized by utilizing palm kernel shell, using ferric chloride and ferrous chloride as magnetic medium via chemical co-precipitation technique. In this experimental study, the influence of operating factors comprising contact time (20-240 min), pH (3.0-12.0), adsorbent dose (0.2-0.8 g), and starting concentrations of BPA (8.0-150 ppm) were studied in removing BPA during batch adsorption system using neat biochar and magnetic biochar. It was observed that the magnetically loaded BC demonstrates superior maximum removal efficiency of BPA with 94.2%, over the neat biochar. The functional groups (FTIR), Zeta potential, vibrating sample magnetometer (VSM), surface and textural properties (BET), surface morphology, and mineral constituents (FESEM/EDX), and chemical composition (XRD) of the adsorbents were examined. The experimental results demonstrated that the sorption isotherm and kinetics were suitably described by pseudo-second-order model and Freundlich model, respectively. By studying the adsorption mechanism, it was concluded that π-π electron acceptor-donor interaction (EAD), hydrophobic interaction, and hydrogen bond were the principal drives for the adsorption of BPA onto the neat BC and magnetic BC.

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References
1.
Li X, Wang C, Zhang J, Liu J, Liu B, Chen G . Preparation and application of magnetic biochar in water treatment: A critical review. Sci Total Environ. 2019; 711:134847. DOI: 10.1016/j.scitotenv.2019.134847. View

2.
Wang S, Gao B, Zimmerman A, Li Y, Ma L, Harris W . Removal of arsenic by magnetic biochar prepared from pinewood and natural hematite. Bioresour Technol. 2014; 175:391-5. DOI: 10.1016/j.biortech.2014.10.104. View

3.
Stackelberg P, Gibs J, Furlong E, Meyer M, Zaugg S, Lippincott R . Efficiency of conventional drinking-water-treatment processes in removal of pharmaceuticals and other organic compounds. Sci Total Environ. 2007; 377(2-3):255-72. DOI: 10.1016/j.scitotenv.2007.01.095. View

4.
Wintgens T, Gallenkemper M, Melin T . Removal of endocrine disrupting compounds with membrane processes in wastewater treatment and reuse. Water Sci Technol. 2004; 50(5):1-8. View

5.
Hamedi A, Trotta F, Zarandi M, Zanetti M, Caldera F, Anceschi A . In Situ Synthesis of MIL-100(Fe) at the Surface of FeO@AC as Highly Efficient Dye Adsorbing Nanocomposite. Int J Mol Sci. 2019; 20(22). PMC: 6888277. DOI: 10.3390/ijms20225612. View