Yamazaki Masakazu, Maeda Satoshi, Kishimoto Naoki, Ohno Koichi
Department of Chemistry, Graduate School of Science, Tohoku University, Aramaki, Aoba-ku, Sendai 980-8578, Japan.
J Chem Phys. 2005 Jan 22;122(4):44303. doi: 10.1063/1.1834900.
The potential energy surface of benzene (C(6)H(6)) with a He*(2(3)S) atom was obtained by comparison of experimental data in collision-energy-resolved two-dimensional Penning ionization electron spectroscopy with classical trajectory calculations. The ab initio model interaction potentials for C(6)H(6)+He*(2(3)S) were successfully optimized by the overlap expansion method; the model potentials were effectively modified by correction terms proportional to the overlap integrals between orbitals of the interacting system, C(6)H(6) and He*(2(3)S). Classical trajectory calculations with optimized potentials gave excellent agreement with the observed collision-energy dependence of partial ionization cross sections. Important contributions to corrections were found to be due to interactions between unoccupied molecular orbitals and the He2s orbital. A C(6)H(6) molecule attracts a He(2(3)S) atom widely at the region where pi electrons distribute, and the interaction of -80 meV (ca. -1.8 kcal/mol) just cover the carbon hexagon. The binding energy of a C(6)H(6) molecule and a He* atom was 107 meV at a distance of 2.40 A on the sixfold axis from the center of a C(6)H(6) molecule, which is similar to that of C(6)H(6)+Li and is much larger than those of the C(6)H(6)+[He,Ne,Ar] systems.
通过将碰撞能量分辨二维彭宁电离电子能谱中的实验数据与经典轨迹计算进行比较,得到了苯(C₆H₆)与He⁺(2³S)原子的势能面。利用重叠展开法成功优化了C₆H₆ + He⁺(2³S)的从头算模型相互作用势;通过与相互作用体系C₆H₆和He⁺(2³S)轨道间重叠积分成正比的校正项,有效地修正了模型势。用优化后的势进行经典轨迹计算,所得结果与观测到的部分电离截面的碰撞能量依赖性非常吻合。发现校正的重要贡献源于未占据分子轨道与He⁺ 2s轨道之间的相互作用。C₆H₆分子在π电子分布区域广泛吸引He⁺(2³S)原子,-80 meV(约-1.8 kcal/mol)的相互作用刚好覆盖碳六边形。在距C₆H₆分子中心六重轴2.40 Å处,C₆H₆分子与He⁺原子的结合能为107 meV,这与C₆H₆ + Li的情况相似,且远大于C₆H₆ + [He, Ne, Ar]体系的结合能。