Moriggi Francesco, Barbera Vincenzina, Galimberti Maurizio, Raffaini Giuseppina
Department of Chemistry, Materials, and Chemical Engineering "Giulio Natta", Politecnico di Milano, Via Luigi Mancinelli 7, 20131 Milano, Italy.
Molecules. 2023 Nov 16;28(22):7633. doi: 10.3390/molecules28227633.
The adsorption of organic molecules on graphene surfaces is a crucial process in many different research areas. Nano-sized carbon allotropes, such as graphene and carbon nanotubes, have shown promise as fillers due to their exceptional properties, including their large surface area, thermal and electrical conductivity, and potential for weight reduction. Surface modification methods, such as the "pyrrole methodology", have been explored to tailor the properties of carbon allotropes. In this theoretical work, an ab initio study based on Density Functional Theory is performed to investigate the adsorption process of small volatile organic molecules (such as pyrrole derivatives) on graphene surface. The effects of substituents, and different molecular species are examined to determine the influence of the aromatic ring or the substituent of pyrrole's aromatic ring on the adsorption energy. The number of atoms and presence of π electrons significantly influence the corresponding adsorption energy. Interestingly, pyrroles and cyclopentadienes are 10 kJ mol more stable than the corresponding unsaturated ones. Pyrrole oxidized derivatives display more favorable supramolecular interactions with graphene surface. Intermolecular interactions affect the first step of the adsorption process and are important to better understand possible surface modifications for carbon allotropes and to design novel nanofillers in polymer composites.
有机分子在石墨烯表面的吸附是许多不同研究领域中的关键过程。纳米尺寸的碳同素异形体,如石墨烯和碳纳米管,因其优异的性能,包括大表面积、热导率和电导率以及减重潜力,已显示出作为填料的前景。人们已经探索了诸如“吡咯方法”等表面改性方法来调整碳同素异形体的性能。在这项理论工作中,基于密度泛函理论进行了从头算研究,以研究小分子挥发性有机分子(如吡咯衍生物)在石墨烯表面的吸附过程。研究了取代基和不同分子种类的影响,以确定吡咯芳香环的芳香环或取代基对吸附能的影响。原子数和π电子的存在显著影响相应的吸附能。有趣的是,吡咯和环戊二烯比相应的不饱和物稳定10 kJ/mol。吡咯氧化衍生物与石墨烯表面表现出更有利的超分子相互作用。分子间相互作用影响吸附过程的第一步,对于更好地理解碳同素异形体可能的表面改性以及设计聚合物复合材料中的新型纳米填料很重要。