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分子和离子液体中石墨烯和氟代石墨烯的剥落。

Exfoliation of graphene and fluorographene in molecular and ionic liquids.

机构信息

Institute of Chemistry of Clermont-Ferrand, Université Clermont Auvergne, CNRS, 63000 Clermont-Ferrand, France.

出版信息

Faraday Discuss. 2017 Dec 14;206:61-75. doi: 10.1039/c7fd00169j.

Abstract

We use molecular dynamics simulations to study the exfoliation of graphene and fluorographene in molecular and ionic liquids, by performing computer experiments in which one layer of the 2D nanomaterial is peeled from a stack, in vacuum and in the presence of solvent. The liquid media and the nanomaterials are represented by fully flexible, atomistic force fields. From these simulations we calculate the potential of mean force, or reversible work, required to exfoliate the materials. Calculations in water and organic liquids showed that small amides (NMP, DMF) are among the best solvents for exfoliation, in agreement with the experiment. We tested ionic liquids with different cation and anion structures, allowing us to learn about their solvent qualities for the exfoliation of the nanomaterials. First, a long alkyl side chain on the cation is favourable for exfoliation of both graphene and fluorographene. The presence of aromatic groups on the cation is also favourable for graphene. No beneficial effect was found between fluorine-containing anions and fluorographene. We also analysed the ordering of ions in the interfacial layers with the materials. Near graphene, nonpolar groups are found along with charged groups, whereas near fluorographene almost exclusively non-charged groups are found, with ionic moieties segregated to the second layer. Therefore, fluorographene appears to be the more hydrophobic surface, as expected.

摘要

我们使用分子动力学模拟来研究石墨烯和氟化石墨烯在分子和离子液体中的剥落,通过在真空和溶剂存在的情况下进行计算机实验,将二维纳米材料的一层从堆叠中剥离。液体介质和纳米材料由完全灵活的原子力场表示。从这些模拟中,我们计算了剥落材料所需的平均力势或可逆功。在水和有机溶剂中的计算表明,小酰胺(NMP、DMF)是最适合剥落的溶剂之一,这与实验结果一致。我们测试了具有不同阳离子和阴离子结构的离子液体,使我们能够了解它们对纳米材料剥落的溶剂性质。首先,阳离子上长的烷基侧链有利于石墨烯和氟化石墨烯的剥落。阳离子上的芳基也有利于石墨烯。在含氟阴离子和氟化石墨烯之间没有发现有益的效果。我们还分析了界面层中离子与材料的有序性。在靠近石墨烯的地方,发现了非极性基团和带电基团,而在靠近氟化石墨烯的地方,几乎只发现了非带电基团,离子部分被隔离到第二层。因此,氟化石墨烯的疏水性似乎更强,这是预期的结果。

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