A theoretical study on the effect of heteroatoms (N, B, Si) on the interaction of aluminum clusters with a carbon graphene-like plane

E. Demianenko, M. Terets, L. Ushakova, S. Zhuravskyi, Y. Sementsov, V. Lobanov, O. Filonenko, V. Kuts, A. Grebenyuk, M. Kartel
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引用次数: 1

Abstract

It is known that the addition of a small amount of carbon nanomaterials significantly improves the mechanical properties of composites with a metal matrix. One of the most important, promising and available metals as a matrix for such modification is aluminum. However, at the interface between the carbon material and Al, aluminum carbides of different composition are formed, which are brittle and have the main disadvantage - solubility in water. Therefore, the appearance of aluminum carbide is a serious problem, since it contributes to the formation of defects, which, when the composite is deformed, leads to cracking of the composite due to the presence of microneedles. In this regard, in order to predict the features of the interaction of aluminum itself with the surface of carbon nanomaterials, it is advisable to model such processes using quantum chemistry methods. The aim of the work was to reveal the effect of temperature on the chemical interaction of aluminum clusters with native, boron-, silicon-, and nitrogen-containing graphene-like planes (GLP). All the calculated by three methods (B3LYP/6-31G(d,p), MP2/6-31G(d,p) and PВЕ0/6-31G(d,p)) values of the dependence of the Gibbs free energy on temperature for different cluster sizes of aluminum and graphene-like clusters are the highest for native graphene-like planes. In all cases, the values of the Gibbs free energy increase with temperature. The lowest values of the temperature dependence of the Gibbs free energy vary as dependent on the size of the reactant models and research methods, this is especially characteristic of the presence of boron and silicon atoms in the graphene-like clusters. Therefore, the absence of heteroatoms in the composition of the nanocarbon matrix contributes to the fact that aluminum carbide islands should not be formed in the carbon-containing nanocomposite with aluminum, which negatively affects the physical and chemical characteristics of the resulting nanocomposite.
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杂原子(N, B, Si)对铝团簇与类碳石墨烯平面相互作用影响的理论研究
已知少量碳纳米材料的加入可以显著提高金属基复合材料的力学性能。作为这种改性的基质,最重要、最有前途和可用的金属之一是铝。然而,在碳材料与Al的界面处,形成了不同成分的碳化物,这些碳化物是脆性的,其主要缺点是易溶于水。因此,碳化铝的出现是一个严重的问题,因为它有助于形成缺陷,当复合材料变形时,由于微针的存在导致复合材料开裂。因此,为了预测铝本身与碳纳米材料表面相互作用的特征,采用量子化学方法对这一过程进行建模是可取的。这项工作的目的是揭示温度对铝团簇与天然、含硼、含硅和含氮的类石墨烯平面(GLP)的化学相互作用的影响。三种方法(B3LYP/6-31G(d,p)、MP2/6-31G(d,p)和PВЕ0/6-31G(d,p))计算的不同团簇尺寸铝和类石墨烯团簇的吉布斯自由能对温度的依赖值均以天然类石墨烯平面最高。在所有情况下,吉布斯自由能的值都随温度的升高而增加。Gibbs自由能温度依赖性的最低值随反应物模型的大小和研究方法的不同而变化,这在类石墨烯簇中存在硼原子和硅原子时尤为明显。因此,纳米碳基体成分中杂原子的缺失导致含碳纳米复合材料与铝不会形成碳化铝孤岛,从而对所得到的纳米复合材料的物理化学特性产生负面影响。
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