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首页> 外文期刊>Environmental Science: Nano >Insights into the adsorption mechanism and dynamic behavior of tetracycline antibiotics on reduced graphene oxide (RGO) and graphene oxide (GO) materials
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Insights into the adsorption mechanism and dynamic behavior of tetracycline antibiotics on reduced graphene oxide (RGO) and graphene oxide (GO) materials

机译:四环素抗生素对石墨烯(RGO)和石墨烯(GO)材料的吸附机理和动态行为的见解

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摘要

The widespread use of antibiotics from both agricultural and human sources has led to their environmental dissemination which is now recognized as a potential hazard to human health and aquatic ecosystems. Along with the extensive academic and social concerns on the impact of this new kind of emerging pollutant, the knowledge on their effective removal from the environment is increasing. However, the complex interactions between antibiotics and sorbents make the experimental studies difficult at the molecular level. To provide an insight into the adsorption mechanism and dynamic behavior of antibiotics, in this work, three tetracycline molecules, namely tetracycline (TTC), oxytetracycline (OTC), and chlortetracycline (CTC), have been chosen as the representative antibiotics to present a theoretical study on their adsorption properties by reduced graphene oxide (RGO) and graphene oxide (GO). The density functional theory (DFT) method and molecular dynamics (MD) simulations were used to address a number of key issues, such as the effects of distinct adsorption sites, pH, and solvent on the adsorption capacity. A closer look at the adsorption configuration and binding energy showed that the pi-pi interaction was the driving force when TCs adsorbed on GO (or RGO), and hydrogen bonds played a significant role in the GO_TC systems. The computed results showed that the tetracycline adsorption affinity for the graphene-based materials followed the order CTC > TTC > OTC and TTC > CTC > OTC in the GO and RGO systems, respectively. The comparison of binding energies at different pH values and solvents proposed that low pH and less polar solvent environments were beneficial to the adsorption efficiency of TCs on GO and RGO. In addition, molecular dynamics simulations have been used to assign the dynamic behavior of the TCs, analyzing the competitive adsorption process, and the intermolecular accumulation was verified to be involved in the adsorption behavior of TCs. The CTC molecule appeared to exhibit the strongest competitiveness. Our work gives a deep insight into the interactions between the graphene-based materials and TCs, and provides a theoretical basis for the further design of adsorbents used for the removal of tetracycline antibiotics in the environment.
机译:从农业和人类来源广泛使用抗生素导致其环境传播,现在被认为是对人类健康和水生生态系统的潜在危害。随着对这种新型新兴污染物的影响的广泛学术和社会问题,有关其有效移除环境的知识正在增加。然而,抗生素和吸附剂之间的复杂相互作用使实验研究在分子水平难以。为了提供对抗生素的吸附机制和动态行为的深入,在这项工作中,已选择三个四环素分子,即四环素(TTC),催产素(OTC)和氯化碳环(CTC),作为代表性的抗生素来表现理论石墨烯氧化物(RGO)和石墨烯(GO)的吸附性能研究。密度泛函理论(DFT)方法和分子动力学(MD)模拟用于解决许多关键问题,例如不同的吸附位点,pH和溶剂对吸附能力的影响。仔细看看吸附配置和结合能量显示PI-PI相互作用是当RO(或RGO)上的TCS和氢键在GO_TC系统中发挥了重要作用时PI-PI相互作用是驱动力。计算结果表明,基于石墨烯的材料的四环素吸附亲和力分别在GO和RGO系统中遵循顺序CTC> TTC> OTC和TTC> CTC> OTC。在不同pH值和溶剂中的结合能的比较提出,低pH和较低的极性溶剂环境有利于TCS在GO和RGO上的吸附效率。此外,分子动力学模拟已被用于分配TCS的动态行为,分析竞争性吸附过程,验证分子间积累涉及TCS的吸附行为。 CTC分子似乎表现出最强的竞争力。我们的工作深入了解基于石墨烯的材料和TCS之间的相互作用,并为用于去除环境中的四环素抗生素的吸附剂的进一步设计提供了理论依据。

著录项

  • 来源
    《Environmental Science: Nano》 |2019年第11期|共13页
  • 作者单位

    North China Elect Power Univ Coll Environm Sci &

    Engn MOE Key Lab Resources &

    Environm Syst Optimizat Beijing 102206 Peoples R China;

    North China Elect Power Univ Coll Environm Sci &

    Engn MOE Key Lab Resources &

    Environm Syst Optimizat Beijing 102206 Peoples R China;

    North China Elect Power Univ Coll Environm Sci &

    Engn MOE Key Lab Resources &

    Environm Syst Optimizat Beijing 102206 Peoples R China;

    North China Elect Power Univ Coll Environm Sci &

    Engn MOE Key Lab Resources &

    Environm Syst Optimizat Beijing 102206 Peoples R China;

    Nankai Univ Inst Modern Opt Tianjin 3003 Peoples R China;

    North China Elect Power Univ Coll Environm Sci &

    Engn MOE Key Lab Resources &

    Environm Syst Optimizat Beijing 102206 Peoples R China;

    Xiamen Univ Dept Phys Xiamen 3611105 Fujian Peoples R China;

    North China Elect Power Univ Coll Environm Sci &

    Engn MOE Key Lab Resources &

    Environm Syst Optimizat Beijing 102206 Peoples R China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 环境科学、安全科学;
  • 关键词

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