Fonseca dos Santos S, Douguet N, Kokoouline V, Orel A E
Department of Chemical Engineering and Material Sciences, University of California, Davis, California 95616, USA.
Department of Physics, University of Central Florida, Florida 32816, USA.
J Chem Phys. 2014 Apr 28;140(16):164308. doi: 10.1063/1.4871982.
We present a theoretical study of the indirect dissociative recombination of linear polyatomic ions at low collisional energies. The approach is based on the computation of the scattering matrix just above the ionization threshold and enables the explicit determination of all diabatic electronic couplings responsible for dissociative recombination. In addition, we use the multi-channel quantum-defect theory to demonstrate the precision of the scattering matrix by reproducing accurately ab initio Rydberg state energies of the neutral molecule. We consider the molecular ions N2H(+) and HCO(+) as benchmark systems of astrophysical interest and improve former theoretical studies, which had repeatedly produced smaller cross sections than experimentally measured. Specifically, we demonstrate the crucial role of the previously overlooked stretching modes for linear polyatomic ions with large permanent dipole moment. The theoretical cross sections for both ions agree well with experimental data over a wide energy range. Finally, we consider the potential role of the HOC(+) isomer in the experimental cross sections of HCO(+) at energies below 10 meV.
我们对低碰撞能量下线性多原子离子的间接离解复合进行了理论研究。该方法基于在电离阈值之上对散射矩阵的计算,并能够明确确定所有导致离解复合的非绝热电子耦合。此外,我们使用多通道量子亏损理论,通过精确再现中性分子的从头算里德堡态能量来证明散射矩阵的精度。我们将分子离子N2H(+)和HCO(+)视为具有天体物理学意义的基准系统,并改进了以前的理论研究,以前的研究反复得出比实验测量值更小的截面。具体来说,我们证明了对于具有大永久偶极矩的线性多原子离子,先前被忽视的拉伸模式的关键作用。两种离子的理论截面在很宽的能量范围内与实验数据吻合良好。最后,我们考虑了HOC(+)异构体在能量低于10 meV时对HCO(+)实验截面的潜在作用。