Lee Edmond P F, Mok Daniel K W, Chau Foo-tim, Dyke John M
Department of Applied Biology and Chemical Technology, Hong Kong Polytechnic University, Hung Hom, Hong Kong.
J Chem Phys. 2006 Sep 14;125(10):104304. doi: 10.1063/1.2227380.
Geometry optimization calculations were carried out on the (approximate)X(1)A(1) state of SF2 and the (approximate)X(2)B(1), (approximate)A(2)A(1), (approximate)B(2)B(2), (approximate)C(2)B(2), (approximate)D(2)A(1), and (approximate)E(2)A(2) states of SF2(+) employing the restricted-spin coupled-cluster single-double plus perturbative triple excitation [RCCSD(T)] method and basis sets of up to the augmented correlation-consistent polarized quintuple-zeta [aug-cc-pV(5+d)Z] quality. Effects of core electron (S 2s(2)2p(6) and F 1s(2) electrons) correlation and basis set extension to the complete basis set limit on the computed minimum-energy geometries and relative electronic energies (adiabatic and vertical ionization energies) were investigated. RCCSD(T) potential energy functions (PEFs) were calculated for the (approximate)X(1)A(1) state of SF2 and the low-lying states of SF2(+) listed above employing the aug-cc-pV(5+d)Z and aug-cc-pV5Z basis sets for S and F, respectively. Anharmonic vibrational wave functions of these neutral and cationic states of SF2, and Franck-Condon (FC) factors of the lowest four one-electron allowed neutral photoionizations were computed employing the RCCSD(T) PEFs. Calculated FC factors with allowance for Duschinsky rotation and anharmonicity were used to simulate the first four photoelectron bands of SF2. The agreement between the simulated and observed first bands in the He I photoelectron spectrum reported by de Leeuw et al. [Chem. Phys. 34, 287 (1978)] is excellent. Our calculations largely support assignments made by de Leeuw et al. on the higher ionization energy bands of SF2.
采用受限自旋耦合簇单双激发加微扰三重激发[RCCSD(T)]方法和高达增强相关一致极化五重zeta[aug-cc-pV(5+d)Z]质量的基组,对SF₂的(近似)X(¹)A(¹)态以及SF₂⁺的(近似)X(²)B(¹)、(近似)A(²)A(¹)、(近似)B(²)B(²)、(近似)C(²)B(²)、(近似)D(²)A(¹)和(近似)E(²)A(²)态进行了几何优化计算。研究了核心电子(S 2s²2p⁶和F 1s²电子)相关以及基组扩展到完全基组极限对计算得到的最低能量几何结构和相对电子能量(绝热和垂直电离能)的影响。分别使用aug-cc-pV(5+d)Z和aug-cc-pV5Z基组对S和F,计算了SF₂的(近似)X(¹)A(¹)态以及上述SF₂⁺的低能态的RCCSD(T)势能函数(PEFs)。利用RCCSD(T) PEFs计算了SF₂这些中性和阳离子态的非谐振动波函数,以及最低的四个单电子允许的中性光电离的弗兰克-康登(FC)因子。考虑了杜申斯基转动和非谐性的计算得到的FC因子用于模拟SF₂的前四个光电子能带。de Leeuw等人[《化学物理》34, 287 (1978)]报道的He I光电子能谱中模拟的和观测到的第一个能带之间的一致性非常好。我们的计算在很大程度上支持了de Leeuw等人对SF₂较高电离能带的归属。