M. Weerasooriyagedara, A. Ashiq, S. R. Gunatilake, D. Giannakoudakis, M. Vithanage
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引用次数: 4
摘要
摘要以城市生活垃圾生物炭和蒙脱土为原料制备复合材料(MSW-BC-MMT),研究其对水中土霉素(OTC)的修复效果。利用SEM图像进行形貌表征,发现复合材料表面呈非均匀片状、片状。通过氮气吸附实验和与原始生物炭相比,复合材料的比表面积增加了1.5倍。对于原始生物炭和MSW-BC-MMT复合材料,三参数Redlich Peterson等温线模型和两参数Temkin等温线模型的拟合系数分别为R2 = 0.998和0.997。此外,动力学最好用伪二阶模型来描述,表明OTC在复合材料上的吸附是通过化学吸附进行的。MSW-BC-MMT的容量为233mg g−1,表明其主要受π-π电子供体-受体相互作用、静电吸引和表面络合作用的影响。FTIR结果表明,OTC也可以通过氢键吸附。通过生产生活垃圾衍生的生物炭来增加生活垃圾的价值被认为是固体废物管理的一个有利解决方案。因此,MSW- bc - mmt复合材料的生产具有重要意义,因为它可以同时作为城市生活垃圾管理技术和抗生素OTC修复的低成本材料。图形抽象
Surface interactions of oxytetracycline on municipal solid waste-derived biochar–montmorillonite composite
ABSTRACT A composite material prepared from municipal solid waste-derived biochar and montmorillonite (MSW-BC-MMT) was studied as a remediation medium for the removal of oxytetracycline (OTC) from aqueous systems. The morphological characterization using SEM images revealed that the composite had a heterogeneous flaky, plate-like surface appearance. Based on N2 adsorption experiments and compared to the pristine biochar, the composite showed an increased specific surface area by 1.5 folds. The three-parameter Redlich Peterson isotherm model and two-parameter Temkin isotherm model were best fitted with R2 = 0.998 and 0.997, respectively, both for the pristine biochar and the MSW-BC-MMT composite. Additionally, the kinetics was best described using the pseudo-second-order model, suggesting that OTC adsorption onto the composite takes place via chemisorption. A capacity of 233 mg g−1 was observed for the MSW-BC-MMT, which is suggested to be predominantly governed by π-π electron donor–acceptor interactions, electrostatic attraction and surface complexation. As evidenced by FTIR results, OTC was presumed to be adsorbed via hydrogen bonding as well. The value addition of MSW by producing MSW-derived biochar is considered a favorable solution for solid waste management. Therefore, the production of the MSW-BC-MMT composite becomes useful due to its significance in acting as a simultaneous MSW management technique and a low-cost material for antibiotic OTC remediation. GRAPHICAL ABSTRACT