Lee Edmond P F, Mok Daniel K W, Chau Foo-Tim, Dyke John M
Department of Applied Biology and Chemical Technology, The Hong Kong Polytechnic University, Hung Hom, Hong Kong.
J Chem Phys. 2007 Dec 7;127(21):214305. doi: 10.1063/1.2790892.
Minimum-energy geometries and relative electronic energies of the X (1)A(') and A (1)A(") states of HPO have been computed employing the coupled-cluster single-double plus perturbative triple excitations {RCCSD(T)} and/or complete-active-space self-consistent-field (CASSCF) multireference internally contracted configuration interaction (MRCI) methods with basis sets of up to the augmented correlation-consistent polarized-valence quintuple-zeta (aug-cc-pV5Z) quality. In addition, RCCSD(T)/aug-cc-pVQZ and CASSCF/MRCI/aug-cc-pVQZ potential energy functions, anharmonic vibrational wave functions, and energies involving all three vibrational modes for both electronic states of HPO and DPO, and Franck-Condon factors between the two electronic states, which allow for Duschinsky rotation and anharmonicity, were computed. Computed Franck-Condon factors were then used to simulate single vibronic level (SVL) emission spectra recently reported by Tackett and Clouthier [J. Chem. Phys. 117, 10604 (2002)]. Excellent agreement between the simulated and observed spectra was obtained for the A (1)A(")(1,0,0)-->X (1)A(') SVL emission of HPO and DPO, when the best estimated ab initio geometries of the two states, which include contributions from core correlation and extrapolation to the complete basis set limit, were used in the simulation, suggesting that the best estimated ab initio geometry of the A (1)A(") state of HPO, particularly the bond angle of 94.5 degrees , is more reliable than the available experimentally derived geometry. A discussion on the geometrical parameters derived from rotational constants obtained from the rotational analysis of a high-resolution spectrum and from Franck-Condon simulation of the vibrational structure of an electronic spectrum is given.
采用耦合簇单双激发加微扰三激发{RCCSD(T)}和/或完全活性空间自洽场(CASSCF)多参考内收缩组态相互作用(MRCI)方法,使用高达增强相关一致极化价层五重ζ(aug-cc-pV5Z)质量的基组,计算了HPO的X (1)A(')和A (1)A(")态的最低能量几何结构和相对电子能量。此外,还计算了RCCSD(T)/aug-cc-pVQZ和CASSCF/MRCI/aug-cc-pVQZ势能函数、非谐振动波函数以及HPO和DPO两种电子态涉及所有三种振动模式的能量,以及考虑了杜什金斯基转动和非谐性的两种电子态之间的弗兰克-康登因子。然后,使用计算得到的弗兰克-康登因子来模拟Tackett和Clouthier最近报道的单振动能级(SVL)发射光谱[《化学物理杂志》117, 10604 (2002)]。当在模拟中使用两种态的最佳估计从头算几何结构(包括核心相关贡献和外推到完整基组极限)时,HPO和DPO的A (1)A(")(1,0,0)-->X (1)A(') SVL发射的模拟光谱与观测光谱获得了极佳的一致性,这表明HPO的A (1)A(")态的最佳估计从头算几何结构,特别是94.5度的键角,比现有的实验推导几何结构更可靠。本文还讨论了从高分辨率光谱的转动分析得到的转动常数以及电子光谱振动结构的弗兰克-康登模拟得到的几何参数。