Hu Yun Hang, Ruckenstein Eli
Department of Chemical and Biological Engineering, State University of New York at Buffalo, Buffalo, NY14260, USA.
J Am Chem Soc. 2005 Aug 17;127(32):11277-82. doi: 10.1021/ja043403y.
Fullerenes have unique chemistry owing to their cage structure, their richness in pi-electrons, and their large polarizabilities. They can trap atoms and small molecules to generate endohedral complexes as superconductors, drug carriers, molecular reactors, and ferroelectric materials. An important goal is to develop effective methods that can affect the behavior of the atoms and small molecules trapped inside the cage. In this paper, the quantum chemical density functional theory was employed to demonstrate that the stability and position of a guest molecule inside the C60 cage can be changed, and its orientation controlled, by modifying the C60 cage shell. The outside attachment of two hydrogen atoms to two adjacent carbon atoms located between two six-membered rings of the C60 cage affects the orientation of the LiF molecule inside and increases the stability of LiF inside the cage by 45%. In contrast, when 60 hydrogen atoms were attached to the outside surface of the C60 cage, thus transforming all C=C double bonds into single bonds, the stability of the LiF inside was reduced by 34%. If two adjacent carbon atoms were removed from C60, the stability of LiF inside this defect C60 was reduced by 41%.
富勒烯因其笼状结构、丰富的π电子以及较大的极化率而具有独特的化学性质。它们能够捕获原子和小分子以生成内包合物,可用作超导体、药物载体、分子反应器和铁电材料。一个重要的目标是开发能够影响被困在笼内的原子和小分子行为的有效方法。在本文中,采用量子化学密度泛函理论来证明,通过修饰C60笼壳,可以改变客体分子在C60笼内的稳定性和位置,并控制其取向。在C60笼的两个六元环之间的两个相邻碳原子上外接两个氢原子,会影响笼内LiF分子的取向,并使LiF在笼内的稳定性提高45%。相比之下,当60个氢原子连接到C60笼的外表面,从而将所有C = C双键转化为单键时,笼内LiF的稳定性降低了34%。如果从C60中移除两个相邻碳原子,这种缺陷C60内LiF的稳定性会降低41%。