Theoretical study of inelastic processes in collisions of Y and Y+ with hydrogen atom

Author:

Wang Y12ORCID,Alexeeva S3ORCID,Wang F1ORCID,Liu L2ORCID,Wu Y24ORCID,Wang J G2,Zhao G35ORCID,Yakovleva S A6ORCID,Belyaev A K6ORCID

Affiliation:

1. School of Physics, Beijing Institute of Technology , Beijing 100081 , China

2. Institute of Applied Physics and Computational Mathematics , Beijing 100088 , China

3. CAS Key Laboratory of Optical Astronomy, National Astronomical Observatories, Chinese Academy of Sciences , Beijing 100101 , China

4. HEDPS, Center for Applied Physics and Technology, Peking University , Beijing 100084 China

5. School of Astronomy and Space Science, University of Chinese Academy of Sciences , Beijing, 100049 China

6. Department of Theoretical Physics and Astronomy , Herzen University, St Petersburg 191186 , Russia

Abstract

ABSTRACT Utilizing a simplified quantum model approach, the low-energy inelastic collision processes between yttrium atoms (ions) and hydrogen atoms have been studied. Rate coefficients corresponding to the mutual neutralization, ion-pair formation, excitation, and de-excitation processes for the above collision systems have been provided in the temperature range of 1000–10 000 K. Three ionic states and 73 covalent states are considered in calculations for the collisions of yttrium atoms with hydrogen atoms, which include six molecular symmetries and 4074 partial inelastic reaction processes. For the collisions of yttrium ions with hydrogen atoms, one ionic state and 116 covalent states are included, which are related to three molecular symmetries and 13 572 partial inelastic collision processes. It is found that the rate coefficients for the mutual neutralization process have a maximum at T = 6000 K, which is an order of magnitude higher than those of other processes. Notably, the positions of optimal windows for the collisions of yttrium atoms and ions with hydrogen atoms are found near electronic binding energy −2 eV (Y) and −4.4 eV (Y+), respectively. The scattering channels located in or near these optimal windows have intermediate-to-large rate coefficients (greater than 10−12 cm3 s−1). The reported data should be useful in the study of non-local thermodynamic equilibrium modelling.

Funder

National Natural Science Foundation of China

Beijing Natural Science Foundation

Russian Science Foundation

Publisher

Oxford University Press (OUP)

Subject

Space and Planetary Science,Astronomy and Astrophysics

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