Theoretical study on the interaction of polychlorotrifluoroethylene fragments with graphene-like planes

Y. V. Hrebelna, E. Demianenko, M. Terets, A. Grebenyuk, Y. Sementsov, N. V. Sigareva, S. M. Makhno, M. Kartel
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Abstract

The interaction of graphene with fragments of polychlorotrifluoroethylene (PCTFE) has been studied by quantum chemistry methods. Within the frameworks of the density functional theory with B3LYP exchange-correlation functional, 6-31G(d,p) basis set and the Grimme dispersion correction, and the second order Møller-Plesset perturbation theory (MP2), the values of the interaction energy of graphene with polychlorotrifluoroethylene oligomers were calculated and the most probable structures of their intermolecular complexes were optimized. As a graphene model, graphene-like planes (GLP) of different sizes were chosen, namely: С40Н16, С54Н18 and С96Н24. Oligomers of polychlorotrifluoroethylene and graphene-like planes in the formed nanocomposites are located closer to each other than individual polymer links. When comparing the results of calculations by the B3LYP-D3/6-31G(d,p) and MP2/6-31G(d,p) methods, both in the case of interactions of polychlorotrifluoroethylene oligomers with each other and intermolecular complexes of polychlorotrifluoroethylene oligomers and graphene-like planes, it has been found that the second order Møller-Plesset method is characterized by a larger intermolecular distance and a lower energy of intermolecular interactions compared to the method of the density functional theory with the Grimme dispersion correction, which is explained by the fact that the MP2 method does not fully take into account the relatively small components of dispersion interactions. Analysis of the calculation results using quantum chemistry methods shows that the addition of graphene-like planes to the polychlorotrifluoroethylene polymer leads to an increase in the intermolecular interaction energy, regardless of the calculation method used and the sizes of polychlorotrifluoroethylene oligomers and graphene-like planes. This may indicate greater strength and thermal stability of the nanocomposite based on graphene-like planes with polychlorotrifluoroethylene oligomers. The zero value of the Gibbs free energy ΔGreact for the interaction of two dimers with each other is characteristic at 270 K, and the similar value of the interaction of the PCTFE dimer with GLP is at a much higher temperature (420 K). This fact reflects the growth in thermostability of nanocomposites as compared to the polymer itself.
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聚三氯乙烯碎片与类石墨烯平面相互作用的理论研究
我们用量子化学方法研究了石墨烯与聚三氟氯乙烯(PCTFE)碎片的相互作用。在具有 B3LYP 交换相关函数、6-31G(d,p) 基集和 Grimme 分散修正的密度泛函理论以及二阶 Møller-Plesset 干涉理论 (MP2) 的框架内,计算了石墨烯与聚三氟氯乙烯低聚物的相互作用能值,并优化了其分子间复合物的最可能结构。作为石墨烯模型,选择了不同大小的类石墨烯平面(GLP),即分别为С40Н16、С54Н18 和С96Н24。在所形成的纳米复合材料中,聚三氟氯乙烯的低聚物和类石墨烯平面之间的距离比单个聚合物链节之间的距离更近。在比较 B3LYP-D3/6-31G(d,p) 和 MP2/6-31G(d,p) 方法的计算结果时,无论是聚三氟氯乙烯低聚物之间的相互作用,还是聚三氟氯乙烯低聚物与类石墨烯平面的分子间复合物、研究发现,二阶 Møller-Plesset 方法与带有 Grimme 色散校正的密度泛函理论方法相比,分子间距离更大,分子间相互作用的能量更低,这是因为 MP2 方法没有充分考虑色散相互作用中相对较小的成分。利用量子化学方法对计算结果进行的分析表明,无论采用哪种计算方法,也无论聚氯三氟乙烯低聚物和类石墨烯平面的大小如何,在聚氯三氟乙烯聚合物中加入类石墨烯平面都会导致分子间相互作用能的增加。这可能表明基于类石墨烯平面与聚三氟氯乙烯低聚物的纳米复合材料具有更高的强度和热稳定性。两个二聚体之间相互作用的吉布斯自由能 ΔGreact 的零值在 270 K 时具有特征性,而 PCTFE 二聚体与 GLP 之间相互作用的类似值则在更高的温度下(420 K)。这反映出纳米复合材料的耐热性比聚合物本身的耐热性更强。
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