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Nanostructured carbon materials for enhanced nitrobenzene adsorption: Physical vs. chemical surface properties

机译:纳米结构碳材料增强硝基苯吸附:物理与化学表面特性

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The influence of physical and chemical surface properties on the adsorption of nitrobenzene, a major organic contaminant in wastewater, was investigated using a wide range of graphene-based materials. These included carbon blacks and activated carbons as well as nanostructured materials such as graphitic nanoribbons (GNRs) and graphene-like structures derived from rice husk (RHC). The surface of GNRs was also modified by oxidation with hydrogen peroxide under UV irradiation (yielding Ox-GNRs). For the understanding of the importance of electrostatic and dispersive interactions, the uptake of nitrobenzene was measured in solutions at controlled pH conditions. The Langmuir and Freundlich parameters were found to be dependent on both surface physics and chemistry. To elucidate this influence, the adsorption of H2O/D2O was performed on selected samples. The edge surfaces of nanoporous carbons appear to exert dominant interactions with polar molecules such as nitrobenzene. At the same time, while the presence of micropores is the most important factor for adsorption at low concentration, the meso- and macropores become more important at higher nitrobenzene concentrations. The novelty of this study resides in the use of complementary techniques to understand the adsorption on traditional carbon materials as a guide for the optimization of novel, graphene-like nanostructured adsorbents. (C) 2018 Elsevier Ltd. All rights reserved.
机译:使用各种基于石墨烯基材料研究了物理和化学表面性能对废水中的主要有机污染物的硝基苯的吸附的影响。这些包括炭黑和活性碳以及纳米结构材料,例如石墨纳米波氏(GNR)和衍生自稻壳(RHC)的石墨烯结构。通过紫外线照射下用过氧化氢氧化也改性GNR的表面(产生Ox-GNR)。为了了解静电和分散相互作用的重要性,在受控pH条件下在溶液中测量硝基苯的摄取。发现Langmuir和Freundlich参数依赖于表面物理和化学。为了阐明这种影响,对选定的样品进行H2O / D2O的吸附。纳米多孔碳的边缘表面似乎与极性分子如硝基苯施加显性相互作用。同时,虽然微孔的存在是低浓度以吸附的最重要因素,但中间胚和大孔在较高的硝基苯浓度下变得更加重要。本研究的新颖性在于使用互补技术来了解传统碳材料的吸附作为优化新型石墨烯纳米结构吸附剂的指导。 (c)2018年elestvier有限公司保留所有权利。

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