An ab initio study of the potential energy surfaces for the collision between a Cs atom and an I2 molecule

2004 ◽  
Vol 82 (7) ◽  
pp. 1216-1222
Author(s):  
Xiaomin Sun ◽  
Dacheng Feng ◽  
Zhengting Cai ◽  
Wensheng Bian

For the Cs + I2 collision system, a systematic theoretical study is first reported using the ab initio method. Three of eight possible channels are considered. The nonadiabatic coupling between the covalent state and the ionic one is calculated from different angles, especially the T-shape collision. The complete ion-pair formation potential energy surfaces of the T-shape collision in two electronic states (ionic 2B2 state and covalent 2A1 state) and the reactive surface of the linear collision are constructed at the QCISD(T)/SDD level. The main features of potential energy surfaces, such as the minimum energy reaction path, the crossing radius (Rc), and energy minimum geometries, are analyzed. The cross section of this titled system is calculated based on the harpoon mechanism and compared with the available experimental data and those obtained for the M + I2 (M = Li, Na) systems.Key words: ab initio two-state potential energy surfaces, nonadiabatic coupling, ion-pair formation, cross section.

Author(s):  
Åsa Larson ◽  
Johanna Roos ◽  
Ann E Orel

The process of resonant ion-pair formation following electron collisions with is studied. The relevant diabatic potential energy surfaces and the electronic couplings between these surfaces are calculated. The reaction is then described using a time-dependent approach with wave packets propagating on the coupled potentials. In order to describe the reaction, it is found necessary to include at least two dimensions in the model. The effects of the Rydberg states on the cross-section for this process are discussed.


2010 ◽  
Vol 133 (12) ◽  
pp. 124311 ◽  
Author(s):  
Massimiliano Bartolomei ◽  
Estela Carmona-Novillo ◽  
Marta I. Hernández ◽  
José Campos-Martínez ◽  
Ramón Hernández-Lamoneda

2001 ◽  
Vol 114 (2) ◽  
pp. 764 ◽  
Author(s):  
Garold Murdachaew ◽  
Alston J. Misquitta ◽  
Robert Bukowski ◽  
Krzysztof Szalewicz

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