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Mechanism of adsorption of tetracycline-Cu multi-pollutants by graphene oxide (GO) and reduced graphene oxide (rGO)

机译:石墨烯氧化物(GO)和石墨烯氧化物(RGO)吸附四环素-Cu多污染物的机理

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BACKGROUND The adsorption of single pollutants onto graphene oxide (GO), such as heavy metals or organics, has been widely investigated, however, the simultaneous removal of the antibiotic-heavy metal multi-pollutants from the intensive livestock and poultry industry has been investigated little. In this study, the GO/reduced GO(rGO) were prepared as adsorbent and the adsorption performance of tetracycline (TC), Cu2+, and the multi-pollutants TC-Cu were investigated. RESULTS The GO surface was abundant in oxygen-containing functional groups but was affected by a reduction effect, and thus rGO lost a large amount of -OH. In the presence of Cu2+, GO's adsorption quantity of TC increased by 96.64%, which was considerably higher than the increase (23.31%) observed in the case of rGO. In contrast, the adsorptivity of GO/rGO in Cu2+ increased slightly with the addition of TC. Further, X-ray photoelectron spectroscopy (XPS) analysis revealed that the Cu2+ participated in a bridging interaction between TC and the adsorbent, forming a complexation TC-Cu. CONCLUSION GO and rGO showed favorable adsorption of TC, Cu2+, and TC-Cu. The adsorption capacity of multi-pollutants was increased compared with individual adsorption, indicating a cooperative adsorption between the TC and Cu2+. The adsorption mechanism mainly included pi-pi conjugation, electrostatic interactions, and the bridge connection by Cu2+, which contributed to the performance of GO/rGO with respect to the adsorption of the antibiotic-heavy metal multi-pollutants. (c) 2018 Society of Chemical Industry
机译:背景技术在石英氧化物(GO)上,如重金属或有机物,所以已经被广泛研究了单一污染物(GO)(GO),然而,从密集的牲畜和家禽业中同时去除抗生素重金属多污染物。在该研究中,对吸附剂制备的去/减少(RGO),并研究了四环素(TC),Cu2 +和多污染物TC-Cu的吸附性能。结果去表面含有含氧官能团的丰富,但受减少效果的影响,因此RGO损失了大量的-OH。在Cu2 +的存在下,GO的TC的吸附量增加了96.64%,比RGO的情况下观察到的增加(23.31%)增加了96.64%。相比之下,随着TC的添加,Cu2 +中的Go / Rgo的吸附率略微增加。此外,X射线光电子体光谱(XPS)分析显示Cu2 +参与Tc和吸附剂之间的桥接相互作用,形成络合TC-Cu。结论GO和RGO显示出良好的TC,CU2 +和TC-Cu吸附。与个体吸附相比,多污染物的吸附能力增加,表明TC和Cu2 +之间的协同吸附。吸附机制主要包括PI-PI缀合,静电相互作用和CU2 +的桥接连接,这有助于Go / Rgo相对于抗生素重金属多污染物的吸附的性能。 (c)2018化学工业协会

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