Shibasaki Kenta, Fujii Asuka, Mikami Naohiko, Tsuzuki Seiji
Department of Chemistry, Graduate School of Science, Tohoku University, Sendai 980-8578, Japan.
J Phys Chem A. 2006 Apr 6;110(13):4397-404. doi: 10.1021/jp0605909.
The accurate CH/pi interaction energy of the benzene-methane model system was experimentally and theoretically determined. In the experiment, mass analyzed threshold ionization spectroscopy was applied to the benzene-methane cluster in the gas phase, prepared in a supersonic molecular beam. The binding energy in the neutral ground state of the cluster, which is regarded as the CH/pi interaction energy for this model system, was evaluated from the dissociation threshold measurements of the cluster cation. The experimentally determined binding energy (D(0)) was 1.03-1.13 kcal/mol. The interaction energy of the model system was calculated by ab initio molecular orbital methods. The estimated CCSD(T) interaction energy at the basis set limit (D(e)) was -1.43 kcal/mol. The calculated binding energy (D(0)) after the vibrational zero-point energy correction (1.13 kcal/mol) agrees well with the experimental value. The effects of basis set and electron correlation correction procedure on the calculated CH/pi interaction energy were evaluated. Accuracy of the calculated interaction energies by DFT methods using BLYP, B3LYP, PW91 and PBE functionals was also discussed.
通过实验和理论确定了苯 - 甲烷模型体系精确的CH/π相互作用能。在实验中,对在超声分子束中制备的气相苯 - 甲烷团簇应用了质量分析阈值电离光谱法。从团簇阳离子的解离阈值测量中评估了团簇中性基态的结合能,该结合能被视为该模型体系的CH/π相互作用能。实验测定的结合能(D(0))为1.03 - 1.13千卡/摩尔。通过从头算分子轨道方法计算了该模型体系的相互作用能。在基组极限下估计的CCSD(T)相互作用能(D(e))为 -1.43千卡/摩尔。振动零点能校正后的计算结合能(1.13千卡/摩尔)与实验值吻合良好。评估了基组和电子相关校正程序对计算的CH/π相互作用能的影响。还讨论了使用BLYP、B3LYP、PW91和PBE泛函的DFT方法计算相互作用能的准确性。