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Sustainable synthesis and remarkable adsorption capacity of MOF/graphene oxide and MOF/CNT based hybrid nanocomposites for the removal of Bisphenol A from water

机译:MOF /氧化石墨烯和MOF / CNT基杂化纳米复合材料的可持续合成及卓越的吸附能力,可从水中去除双酚A

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A series of novel absorbents based on Cu-BDC MOFs decorated over graphene oxide (GrO) and carbon nanotubes (CNTs) hybrid nanocomposites, namely Cu-BDC@GrO and Cu-BDC@CNT, are synthesized via a facile and one-pot green solvothermal method for water remediation. The nanocomposites were characterized by XRD, TEM, SEM, EDS, Raman, FTIR, TGA, XPS, Zetasizer and ICP-OES instruments. XRD results confirmed the high crystalline structure of the synthesized hybrid nanocomposites. Morphological analysis by SEM and TEM verified the successful decoration of nano-sized Cu-BDC MOFs over GrO and CNT platforms; whereas, EDS and XPS analysis confirmed the presence of all components in the hybrid nanocomposites. Bisphenol A was used in this study as a model organic pollutant that is sometimes present in the industrial wastewater to test the adsorption capacity of the prepared hybrid nanomaterials toward their removal from water. The hybrid nanomaterials showed remarkable adsorption capacity of 182.2 and 164.1 mg/g toward the removal of BPA, which was several times higher than that of 60.2 mg/g for Cu-BDC MOF itself. The Langmuir, Freundlich, Temkin and D-R isotherm models were applied to analyze the experimental data and the results revealed that the Freundlich model describes the experimental data best. A kinetic study was carried out and it showed that the prepared nanomaterials could remove maximum amount of BPA from water in 30 min. The pseudo-first order, pseudo-second order and intra-particle diffusion models were applied to evaluate the kinetic data and the results suggested that the kinetics data could be well fitted to the pseudo-second order kinetic model. Additionally, the BAP adsorption process onto the hybrid nanocomposites was spontaneous and exothermic. The pi-pi interactions between the BPA and hybrid nanomaterials played a vital role during the BPA adsorption process. The higher adsorption capacity and water stability makes them a good candidate for water remediation applications. (C) 2019 Elsevier B.V. All rights reserved.
机译:通过简便易用的一锅绿色合成了一系列基于Cu-BDC MOF的新型吸收剂,这些吸收剂装饰在氧化石墨烯(GrO)和碳纳米管(CNTs)杂化纳米复合材料上,即Cu-BDC @ GrO和Cu-BDC @ CNT。溶剂热法修复水。通过XRD,TEM,SEM,EDS,拉曼,FTIR,TGA,XPS,Zetasizer和ICP-OES仪器对纳米复合材料进行了表征。 XRD结果证实了合成的杂化纳米复合材料的高晶体结构。 SEM和TEM的形态学分析证明了在GrO和CNT平台上成功装饰了纳米级Cu-BDC MOF。 EDS和XPS分析证实了杂化纳米复合材料中所有组分的存在。在这项研究中,双酚A被用作模型有机污染物,有时会出现在工业废水中,以测试制备的杂化纳米材料对其从水中去除的吸附能力。杂化纳米材料对BPA的去除表现出显着的吸附能力182.2和164.1 mg / g,比Cu-BDC MOF本身的60.2 mg / g高出几倍。用Langmuir,Freundlich,Temkin和D-R等温线模型分析实验数据,结果表明Freundlich模型最好地描述了实验数据。进行了动力学研究,结果表明所制备的纳米材料可以在30分钟内从水中去除最大量的BPA。应用伪一阶,伪二阶和粒子内扩散模型对动力学数据进行评估,结果表明动力学数据可以很好地拟合伪二阶动力学模型。此外,BAP在杂化纳米复合材料上的吸附过程是自发的且放热的。 BPA和杂化纳米材料之间的pi-pi相互作用在BPA吸附过程中起着至关重要的作用。更高的吸附能力和水稳定性使其成为水修复应用的理想选择。 (C)2019 Elsevier B.V.保留所有权利。

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