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双原子分子在富勒烯C60中的封装:对其主要性质的影响。

Encapsulation of diatomic molecules in fullerene C60: implications for their main properties.

作者信息

Dolgonos Grygoriy A, Peslherbe Gilles H

机构信息

Computational Centre of Chizevsky's Regional Scientific Library, 24 V. Perspektyvna str., Kirovograd, Ukraine 25006.

出版信息

Phys Chem Chem Phys. 2014 Dec 21;16(47):26294-305. doi: 10.1039/c4cp04069d. Epub 2014 Nov 3.

DOI:10.1039/c4cp04069d
PMID:25363607
Abstract

The endohedral complexes of diatomic guest molecules H2, N2, O2, F2, HF, CO, LiH, LiF, BN, and BeO with C60 have been characterized computationally by employing second-order Møller-Plesset (MP2) theory and its density-fitting local (DF-LMP2) variant. The interaction energies, equilibrium geometries, dipole moments and harmonic vibrational frequencies of these complexes have been systematically calculated. It was found that all guest molecules are stabilized inside the C60 cage, with the most pronounced stabilization effect (of about 50 kcal mol(-1)) observed for the polar covalent BeO and BN molecules. It is noteworthy that the normally short-lived BN molecule is the only guest molecule that was found to chemisorb on the inner surface of C60. When encapsulated, all guest molecules (except for BN) exhibit bond elongation (up to 0.07 Å) and, consequently, a red shift in vibrational stretching frequencies. In fact, the calculated vibrational properties of the H2@C60 complex agree well with those derived from experiment. The C60 geometry is not perturbed significantly upon encapsulation, but a subtle tendency to decrease the carbon-carbon bond alternation is observed. Polar guest molecules inside C60 are located at an off-center position and a significant decrease in their dipole moments upon encapsulation is observed. The importance of explicitly taking into account electron correlation effects, as well as full geometry relaxation, to yield a correct description of the complexes investigated is clearly demonstrated. The present results may serve as a guide for future attempts to synthesize such complexes employing the "molecular surgery" approach.

摘要

通过采用二阶Møller-Plesset(MP2)理论及其密度拟合局域(DF-LMP2)变体,对双原子客体分子H₂、N₂、O₂、F₂、HF、CO、LiH、LiF、BN和BeO与C₆₀形成的内嵌配合物进行了计算表征。系统计算了这些配合物的相互作用能、平衡几何结构、偶极矩和谐波振动频率。结果发现,所有客体分子在C₆₀笼内都得到了稳定,其中极性共价的BeO和BN分子的稳定效果最为显著(约50 kcal mol⁻¹)。值得注意的是,通常寿命较短的BN分子是唯一被发现能化学吸附在C₆₀内表面的客体分子。当被封装时,所有客体分子(除BN外)都表现出键长伸长(可达0.07 Å),因此振动伸缩频率发生红移。事实上,计算得到的H₂@C₆₀配合物的振动性质与实验结果吻合良好。封装后C₆₀的几何结构没有受到显著扰动,但观察到碳-碳键交替略有减小的趋势。C₆₀内的极性客体分子位于偏心位置,封装后其偶极矩显著减小。明确考虑电子相关效应以及完全几何弛豫对于正确描述所研究的配合物的重要性得到了清楚的证明。目前的结果可为未来采用“分子手术”方法合成此类配合物的尝试提供指导。

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