Sure Rebecca, Tonner Ralf, Schwerdtfeger Peter
Centre for Theoretical Chemistry and Physics, The New Zealand Institute for Advanced Study, Massey University Auckland, 0745 Auckland, New Zealand; Mulliken Center for Theoretical Chemistry, University of Bonn, Beringstr. 4, 53115, Bonn, Germany.
J Comput Chem. 2015 Jan 15;36(2):88-96. doi: 10.1002/jcc.23787.
The most stable fullerene structures from C20 to C60 are chosen to study the energetics and geometrical consequences of encapsulating the rare gas elements He, Ne, or Ar inside the fullerene cage using dispersion corrected density functional theory. An exponential increase in stability is found with increasing number of carbon atoms. A similar exponential law is found for the volume expansion of the cage due to rare gas encapsulation with decreasing number of carbon atoms. We show that dispersion interactions become important with increasing size of the fullerene cage, where Van der Waals forces between the rare gas atom and the fullerene cage start to dominate over repulsive interactions. The smallest fullerenes where encapsulation of a rare gas element is energetically still favorable are He@C48, Ne@C52, and Ar@C58. While dispersion interactions follow the trend Ar > Ne > He inside C60 due to the trend in the rare gas dipole polarizabilities, repulsive forces become soon dominant with smaller cage size and we have a complete reversal for the energetics of rare gas encapsulation at C50.
选取从C20到C60最稳定的富勒烯结构,采用色散校正密度泛函理论研究在富勒烯笼内包裹稀有气体元素氦、氖或氩的能量学和几何效应。发现稳定性随碳原子数增加呈指数增长。对于因包裹稀有气体导致笼体积膨胀,发现随着碳原子数减少也存在类似的指数规律。我们表明,随着富勒烯笼尺寸增大,色散相互作用变得重要,此时稀有气体原子与富勒烯笼之间的范德华力开始超过排斥相互作用。在能量上仍有利于包裹稀有气体元素的最小富勒烯是He@C48、Ne@C52和Ar@C58。虽然由于稀有气体偶极极化率的趋势,C60内部的色散相互作用遵循Ar > Ne > He的趋势,但随着笼尺寸变小,排斥力很快占主导,对于C50处稀有气体包裹的能量学,我们有完全相反的情况。