Decontamination of surface water from organic pollutants using graphene membranes

S. Bellucci
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引用次数: 1

Abstract

In this paper, we deal with one of the most urgent and relevant topics nowadays, i.e., water pollution. The problem is finding a valid candidate for the absorption and removal of different kinds of pollutants commonly found in water. There are already some indications about graphene oxide as a potential candidate. In the present work, we take a step forward to show how graphene nanoplatelets (rather than the oxide form of this material) are capable of decontaminating water. In this starting step, we use a specific substance as a model pollutant, i.e., acetonitrile, leaving for the future steps, to extend the analysis to additional types of pollutants. In addition to laboratory-produced graphene nanoplatelets, we already examined in the past; now we wish to consider also commercially available ones, so that the new results will not be bound to a laboratory (low technology readiness level) material, but will become interesting also from the industrial point of view, thanks to the scalability of the nanoplatelets production. For this aim, we compare the performance of two types of filters based on two classes of nanomaterials, i.e., those produced by microwave and ultrasound assisted exfoliation, already analyzed in our earlier works, with those commercially distributed by an Italian company, i.e., NANESA, http://www.nanesa.com/. The latter is an innovative SME involved in the production of graphene-based nanomaterials. We focus here in the graphene nanoplatelets, commercially available in industrial batches (GXNan grades). The present study leads to determine which filtering membrane, among the various types of commercial graphene considered, shows the greatest stability, and the lack of breakage of the membrane, concentrating on such accessory features, given that all types of graphene showed excellent adsorption properties.
使用石墨烯膜去除地表水中的有机污染物
在本文中,我们处理当今最紧迫和相关的话题之一,即水污染。问题是找到一种有效的候选材料来吸收和去除水中常见的各种污染物。已经有一些迹象表明氧化石墨烯是潜在的候选者。在目前的工作中,我们向前迈进了一步,展示了石墨烯纳米片(而不是这种材料的氧化物形式)如何能够净化水。在这个开始的步骤中,我们使用一种特定的物质作为模型污染物,即乙腈,为未来的步骤留下,将分析扩展到其他类型的污染物。除了实验室生产的石墨烯纳米片,我们过去已经检查过;现在我们希望也考虑商业上可用的材料,这样新的结果就不会局限于实验室(低技术准备水平)的材料,但从工业的角度来看,由于纳米血小板生产的可扩展性,也会变得有趣。为此,我们比较了基于两类纳米材料的两种滤光片的性能,即微波和超声波辅助去角质产生的滤光片,在我们早期的工作中已经分析过,与意大利公司(即NANESA, http://www.nanesa.com/)商业销售的滤光片。后者是一家从事石墨烯基纳米材料生产的创新型中小企业。我们专注于石墨烯纳米片,商业上可用于工业批量(GXNan级)。鉴于所有类型的石墨烯都表现出优异的吸附性能,本研究旨在确定哪种过滤膜在考虑的各种类型的商用石墨烯中表现出最大的稳定性,并且膜的破坏程度最低,重点关注这些辅助特征。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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