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首页> 外文期刊>Environmental research >Adsorptive removal of noxious atrazine using graphene oxide nanosheets: Insights to process optimization, equilibrium, kinetics, and density functional theory calculations
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Adsorptive removal of noxious atrazine using graphene oxide nanosheets: Insights to process optimization, equilibrium, kinetics, and density functional theory calculations

机译:使用石墨烯氧化物纳米液相容性去除有毒尿嘧啶:处理优化,平衡,动力学和密度泛函理论计算的见解

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摘要

Atrazine is a toxic herbicide whose alarming rate of contamination in the drinking water and wastewater poses a severe threat to the environment and human health. Here in this study, the graphene oxide (GO) nanosheets were prepared using Hummers' method with minor modification and studied as a potential adsorbent for atrazine removal from simulated wastewater. The spectroscopy and microscopic analysis confirmed the successful formation of GO with a multilayer structure resembling the crumpled sheets with random stacking. The Response Surface Methodology (RSM) employing Box Behnken design (BBD) was successfully developed to predict the optimal conditions for maximal atrazine removal as adsorbent dosage 121.45 mg/L; initial feed concentration 27.03 mg/L; temperature 27.69 °C, pH 5.37, and time 180 min. The atrazine adsorption onto GO was found to be higher in acidic pH and lower temperature. Density functional theory (DFT) calculation of adsorbent-adsorbate complex in the implicit solvent medium suggests adsorption affinity energy of -24.4 kcal/mol for atrazine. A careful observation of the molecules configuration and binding energy showed that the π-π interactions and hydrogen bonds played a significant role in the adsorption phenomena. Langmuir isotherm suited well to the adsorption process with a maximum adsorption capacity of 138.19 mg/g, at 318 K. The fitness of kinetic models for atrazine adsorption onto GO nanosheets were in following order Ho < Sobkowsk-Czerwi < Avrami model based on their correlation coefficient (R~2) values. Reusability analysis showed that GO nanosheets could be effectively recycled using 0.01 N NaOH up to six cycles of atrazine removal. Thus, this study provided a theoretical and experimental basis for the potential application of GO nanosheets as a novel adsorbent for the removal of hazardous atrazine.
机译:阿特拉津是一种毒性除草剂,其饮用水和废水中的污染速度造成严重威胁环境和人类健康。在本研究中,使用液压器的方法使用液体改性来制备石墨烯氧化物(GO)纳米片,并作为从模拟废水中取出的潜在吸附剂。光谱学和微观分析证实了与具有随机堆叠的皱巴巴的片材类似的多层结构的成功形成。响应面方法(RSM)采用盒子BEHNKEN设计(BBD)被成功开发,以预测最大阿特拉嗪去除的最佳条件为吸附剂量121.45mg / L;初始饲料浓度27.03 mg / L;温度27.69°C,pH 5.37和时间180分钟。发现亚厕所吸附在酸性pH和较低温度下更高。隐式溶剂介质中吸附剂 - 吸附络合物的密度函数理论(DFT)计算表明阿特拉津-24.4kcal / mol的吸附亲和力能量。仔细观察分子构型和结合能量显示π-π相互作用和氢键在吸附现象中起着重要作用。 Langmuir等温线适合于吸附过程,最大吸附容量为138.19 mg / g,318 K.基于其相关性,在纳米纳米上的阿特拉嗪吸附的适应性的适应性在下列顺序系数(R〜2)值。可重用性分析表明,使用0.01N NaOH可以有效地回收纳米胸泡,其高达六个循环的尿嘧啶去除。因此,本研究为潜在应用Go Nanoshe片作为一种用于去除危险尿嘧啶的新型吸附剂来提供理论和实验基础。

著录项

  • 来源
    《Environmental research》 |2021年第9期|111428.1-111428.13|共13页
  • 作者单位

    Laboratory for Bioremediation Research Unit Operations Laboratory Department of Biotechnology Kumaraguru College of Technology Coimbatore 641049 India Department of Biotechnology Mepco Schlenk Engineering College Sivakasi India;

    Department of Petrochemical Engineering JCT College of Engineering and Technology Coimbatore 641105 India;

    Department of Physics Bharathiar University Coimbatore 641046 Tamil Nadu India;

    Department of Microbial Biotechnology Bharathiar University Coimbatore 641046 Tamil Nadu India;

    Laboratory for Bioremediation Research Unit Operations Laboratory Department of Biotechnology Kumaraguru College of Technology Coimbatore 641049 India;

    Department of Physics Kumaraguru College of Technology Coimbatore 641049 India;

    Department of Chemical Engineering Khalifa University P.O. Box 127788 Abu Dhabi United Arab Emirates;

    Department of Chemical Engineering Khalifa University P.O. Box 127788 Abu Dhabi United Arab Emirates;

    Department of Computer Science and Engineering Kongu Engineering College Perundurai Erode 638060 Tamilnadu India;

    Department of Chemistry School of Advanced Sciences Vellore Institute of Technology Vellore Tamilnadu 632014 India;

    Department of Chemical Engineering Khalifa University P.O. Box 127788 Abu Dhabi United Arab Emirates;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Graphene oxide; Adsorption; Herbicide; Wastewater treatment; Density functional theory;

    机译:氧化石墨烯;吸附;除草剂;废水处理;密度泛函理论;

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