five

Geometry parameters, vibrational frequencies and RT parameters for the BrCN+ cation

收藏
Figshare2013-06-10 更新2026-04-29 收录
下载链接:
https://figshare.com/articles/dataset/_Geometry_parameters_vibrational_frequencies_and_RT_parameters_for_the_BrCN_sup_sup_cation/1011980
下载链接
链接失效反馈
官方服务:
资源简介:
Table 1. Geometry parameters, vibrational frequencies and RT parameters for the BrCN+ cation. Hereby, bond lengths are given in Å, vibrational frequencies (ω) and RT parameters c and d are given in wavenumbers for the NR, scalar relativistic (SF) and four-component (DC) treatment. For the DC case the distances for the lower and (upper) surface are both listed, where ε is dimensionless. c calc and c fit denote the values obtained by equations (28), (29) and via the fit. The parameter d does not apply in the absence of the SO coupling. Abstract In this work, we present the four-component quadratic vibronic coupling model for the description of the Renner–Teller effect (RTE) in the presence of the spin–orbit coupling. The interaction of the two potential energy surfaces emerging from the cationic 2Π states of singly ionized linear triatomic molecules is described by the quadratic coupling constant c for the genuine RT repulsion and the second parameter, d, for a nonconstant spin–orbit coupling varying with the bond angle of the triatomic. The emergence of a linear RT constant in the presence of the spin–orbit operator was originally shown by Poluyanov and Domcke (2004 Chem. Phys. 301 111–27) and is based on the application of the Breit–Pauli Hamiltonian in combination with nonrelativistic wavefunctions. In contrast to this methodology, we generate the diabatic RT Hamiltonian in a 4-spinor basis where the symmetry transformation properties of the electronic and vibrational wavefunctions completely determine the RT matrix structure. Explicit access to highly correlated wavefunctions is not required in our approach. In addition, the four-component vibronic coupling model takes into account the full spatial orbital relaxation upon the inclusion of the spin–orbit coupling and is therefore well suited for heavy systems. The third parameter, p, accounting for a possible pseudo-Jahn–Teller interaction is not considered here, but it does not introduce a principal difficulty. As the initial systems for this study, we considered the BrCN+ and ClCN+ cations and determined the c and d parameters by a numerical fit to accurate adiabatic potential energy surfaces obtained by the relativistic Fock-space coupled-cluster method. New values for the computed linear RT parameter d amount to 14.7 ± 0.5 cm−1 for ClCN+ and 73.2 ± 0.7 cm−1 for BrCN+.
创建时间:
2013-06-10
5,000+
优质数据集
54 个
任务类型
进入经典数据集
二维码
社区交流群

面向社区/商业的数据集话题

二维码
科研交流群

面向高校/科研机构的开源数据集话题

数据驱动未来

携手共赢发展

商业合作