Adsorption of acetochlor-contaminated water systems using novel P-doped biochar: Effects, application, and mechanism
文献类型: 外文期刊
作者: Wang W.;Wang P.;Wu C.;Zhang L.;Mao L.;Zhu L.;Jiang H.;Zheng Y.;Liu X.
作者机构:
关键词: Acetochlor;Adsorption;Mechanism;P-doped biochar;Wastewater treatment
期刊名称: Chemosphere
ISSN: 0045-6535
年卷期: 2024 年 350 卷
页码:
收录情况: SCIE(2024版) ; ; EI(2024版)
摘要: Given the serious threat of acetochlor (ACT) to the aquatic ecological environment, designing wastewater treatment–oriented adsorbents for the sustainable remediation of actual ACT-contaminated water is a promising yet challenging strategy. Herein, a novel P-doped biochar (PBC-800) with a high adsorption capacity (51.34 mg g−1) and a rapid reaction rate (47.35 mg g−1 h−1) for ACT was prepared through pyrolyzing of rice straw biomass pre-impregnated with potassium dihydrogen phosphate (KH2PO4). Additionally, P-doped biochars synthesized at different pyrolysis temperatures exhibited significant variations in ACT adsorption performance, which was mainly ascribed to the distinction between hydrophilicity and sp2 conjugate C (ID/IG = 0.84–1.08). The adsorption behavior of ACT on PBC-800 followed the Elovich kinetics and Freundlich adsorption isotherm models. Thermodynamic calculations indicated that the adsorption of ACT by PBC-800 was a spontaneously disordered decreasing exothermic process. Besides, PBC-800 exhibited a powerful anti-interference for ACT adsorption within complex water matrices, highlighting its potential for various of practical applications. Through characterization analysis and further experiments, it was proved that the excellent adsorption performance of PBC-800 on ACT was ascribed to a combination of physical and chemical adsorption mechanisms, including 57.5% pore filling, 23.4% hydrophobic interaction, 12.7% π–π interaction, and 6.4% hydrogen bonding. Moreover, PBC-800 exerted a prominent adhesion impact upon Gram-positive and negative bacteria at 3 h. This study offers a new idea for the utilization of agricultural residues and provides insights into the mechanism of ACT adsorption through its derived biochar. © 2023 Elsevier Ltd
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