Quantum scattering cross-sections for O(3P) + N2 collisions for planetary aeronomy

Author:

Kumar Sanchit12ORCID,Kumar Sumit12,Gacesa Marko3,El-Kork Nayla34,Yamijala Sharma S R K C1256ORCID

Affiliation:

1. Department of Chemistry, Indian Institute of Technology Madras , Chennai 600036 , India

2. Centre for Quantum Information, Communication, and Computing, Indian Institute of Technology Madras , Chennai 600036 , India

3. Department of Physics, Khalifa University , P.O. Box 127788, Abu Dhabi , United Arab Emirates

4. Space and Planetary Science Center, Khalifa University , Abu Dhabi , United Arab Emirates

5. Centre for Atomistic Modelling and Materials Design, Indian Institute of Technology Madras , Chennai 600036 , India

6. Centre for Molecular Materials and Functions, Indian Institute of Technology Madras , Chennai 600036 , India

Abstract

ABSTRACT ‘Hot atoms’, atoms in their excited states, transfer their energy to the surrounding atmosphere through collisions. This process (known as thermalization) plays a crucial role in various astrophysical and atmospheric processes. Thermalization of hot atoms is mainly governed by the amount of species present in the surrounding atmosphere and the collision cross-sections between the hot atoms and surrounding species. In this work, we investigated the elastic and inelastic collisions between hot oxygen atoms and neutral N2 molecules, relevant to oxygen gas escape from the Martian atmosphere and for characterizing the chemical reactions in hypersonic flows. We conducted a series of quantum scattering calculations between various isotopes of O(3P) atoms and N2 molecules across a range of collision energies (0.3–4 eV), and computed both their differential and collision cross-sections using quantum time-independent coupled-channel approach. Our differential cross-section results indicate a strong preference for forward scattering over sideways or backward scattering, and this anisotropy in scattering is further pronounced at higher collision energies. By comparing the cross-sections of three oxygen isotopes, we find that the heavier isotopes consistently have larger collision cross-sections than the lighter isotopes. As a whole, this study contributes to a better understanding of the energy distribution and thermalization processes of hot atoms within atmospheric environments. Specifically, the cross-sectional data presented in this work is directly useful in improving the accuracy of energy relaxation modelling of O and N2 collisions over the Mars and Venus atmospheres.

Funder

Indian Institute of Technology Madras

Khalifa University

Science and Engineering Research Board

Publisher

Oxford University Press (OUP)

Subject

Space and Planetary Science,Astronomy and Astrophysics

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