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Magnetic-watermelon rinds biochar for uranium-contaminated water treatment using an electromagnetic semi-batch column with removal mechanistic investigations

生物炭 吸附 吸附 化学 水溶液 木炭 生物吸附 解吸 比表面积 可重用性 污染 化学工程 环境修复 铀 热解 材料科学 有机化学 冶金 催化作用 程序设计语言 生态学 工程类 生物 计算机科学 软件
作者
Lakshmi Prasanna Lingamdinne,Jong-Soo Choi,Ganesh Kumar Reddy Angaru,Rama Rao Karri,Jae‐Kyu Yang,Yoon‐Young Chang,Janardhan Reddy Koduru
出处
期刊:Chemosphere [Elsevier BV]
卷期号:286: 131776-131776 被引量:93
标识
DOI:10.1016/j.chemosphere.2021.131776
摘要

Abstract Biosorption using modified biochar has been increasingly adopted for the sustainable removal of uranium-contaminated from an aqueous solution. In this research study, the facile preparation and surface characteristics of magnetized biochar derived from waste watermelon rind to treat U(VI) contaminated water were investigated. The porosity, specific surface area, adsorption capacity, reusability, and stability were effectively improved after the magnetization of biochar. The kinetics and isotherm studies found that the U(VI) adsorption was rate-limiting monolayer sorption on the homogeneous surface of magnetized watermelon rind biochar (MWBC). The maximum adsorption capacity was found to be 323.56 mg of U(VI) per g of MWBC at pH 4.0 and 293 K that was higher than that of watermelon rind biochar (WBC) (135.86 mg g−1) and other sourced biochars. The surface interaction mechanism, environmental feasibility, applicability for real-filed water treatment studied in the electromagnetic semi-batch column, and reusability of MWBC were also explored. Furthermore, salient raised the ion exchange and complexation action capacity of MWBC due to the presence of Fe oxide. The overall results indicated that MWBC was not only inexpensive and had a high removal capacity for U(VI), but it also easily enabled phase separation from an aqueous solution, with more than three times reusability at a minimum removal capacity of 99%.
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