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Adsorption of Antibiotics on Graphene and Biochar in Aqueous Solutions Induced by π-π Interactions

机译:π-π相互作用引起的水溶液中石墨烯和生物炭上抗生素的吸附

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摘要

The use of carbon based materials on the removal of antibiotics with high concentrations has been well studied, however the effect of this removal method is not clear on the actual concentration of environments, such as the hospital wastewater, sewage treatment plants and aquaculture wastewater. In this study, experimental studies on the adsorption of 7 antibiotics in environmental concentration of aqueous solutions by carbon based materials have been observed. Three kinds of carbon materials have shown very fast adsorption to antibiotics by liquid chromatography–tandem mass spectrometry (LC-MS-MS) detection, and the highest removal efficiency of antibiotics could reach to 100% within the range of detection limit. Surprisedly, the adsorption rate of graphene with small specific surface area was stronger than other two biochar, and adsorption rate of the two biochar which have approximate specific surface and different carbonization degree, was significantly different. The key point to the present observation were the π-π interactions between aromatic rings on adsorbed substance and carbon based materials by confocal laser scanning microscope observation. Moreover, adsorption energy markedly increased with increasing number of the π rings by using the density functional theory (DFT), showing the particular importance of π-π interactions in the adsorption process.
机译:已经对使用碳基材料去除高浓度抗生素进行了深入研究,但是这种去除方法对实际环境浓度(如医院废水,污水处理厂和水产养殖废水)的影响尚不清楚。在这项研究中,已经观察到碳基材料对环境浓度的水溶液中7种抗生素的吸附的实验研究。三种碳材料在液相色谱-串联质谱(LC-MS-MS)检测中显示出对抗生素的快速吸附,在检测限范围内,抗生素的最高去除率可达到100%。令人惊讶的是,具有小比表面积的石墨烯的吸附速率强于其他两种生物炭,并且具有近似比表面积和不同碳化度的两种生物炭的吸附速率显着不同。通过共聚焦激光扫描显微镜观察,本观察的关键是吸附物质上的芳环与碳基材料之间的π-π相互作用。此外,通过使用密度泛函理论(DFT),随着π环数目的增加,吸附能显着增加,这表明π-π相互作用在吸附过程中特别重要。

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