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四环在 C32 富勒烯稳定性中的作用和广义 Stone-Wales 转变机制:密度泛函理论研究。

Role of four-membered rings in C32 fullerene stability and mechanisms of generalized Stone-Wales transformation: a density functional theory investigation.

机构信息

Institute for Chemical Physics and Department of Chemistry, School of Science, Xi'an Jiaotong University, Xi'an, 710049, China.

出版信息

Phys Chem Chem Phys. 2011 Aug 28;13(32):14629-35. doi: 10.1039/c0cp02964e. Epub 2011 Jul 14.

Abstract

Density functional theory (DFT) methods have been applied to study C(32) fullerenes built from four-, five-, and six-membered rings. The relative energies of pure C(32) fullerenes have been evaluated to locate three most stable structures, 32:D(4d) with two squares, 1:D(3) without square and 5:C(s) with one square. Structural analysis reveals that there is a rearrangement pathway between the lowest energy classical isomer 1:D(3) and the lowest energy non-classical isomer 32:D(4d), and 5:C(s) behaves just as an intermediate between them. The kinetic processes of generalized Stone-Wales transformation (GSWT) with four-membered rings have been explored and two distinct reaction mechanisms are determined by all the transition states and intrinsic reaction coordinates with PBE1PBE/6-31G(d) approach for the first time. One mechanism is the concerted reaction with a rotating dimer closed to the cage surface and another is the stepwise reaction with a carbene-like sp(3) structure, whereas the latter is sorted into two paths based on four-membered ring vanishing before or after the formation of the carbene-like structure. It is indicated that there is no absolute preference for any mechanism, which depends on the adaptability of different reactants on the diverse mechanisms. Furthermore, it's found that the interconversion process with the participation of squares is more reactive than the rearrangement between C(60)_I(h) and C(60)_C(2v), implying some potential importance of non-classical small fullerenes in the fullerene isomerization.

摘要

密度泛函理论(DFT)方法已被应用于研究由四、五和六元环构建的 C(32)富勒烯。已评估纯 C(32)富勒烯的相对能量,以定位三个最稳定的结构,即具有两个正方形的 32:D(4d)、没有正方形的 1:D(3)和具有一个正方形的 5:C(s)。结构分析表明,在最低能量经典异构体 1:D(3)和最低能量非经典异构体 32:D(4d)之间存在重排途径,而 5:C(s)仅作为它们之间的中间体。已探索了具有四个元环的广义 Stone-Wales 转变(GSWT)的动力学过程,并通过 PBE1PBE/6-31G(d)方法首次确定了所有过渡态和本征反应坐标的两种不同反应机制。一种机制是具有接近笼表面的旋转二聚体的协同反应,另一种是具有卡宾样 sp(3)结构的分步反应,而后者根据四元环在形成卡宾样结构之前或之后消失分为两条路径。结果表明,不存在对任何机制的绝对偏好,这取决于不同反应物在不同机制上的适应性。此外,发现具有正方形参与的互变异构过程比 C(60)_I(h)和 C(60)_C(2v)之间的重排更具反应性,这表明非经典小分子富勒烯在富勒烯异构化中具有一定的潜在重要性。

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