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Quantum Behavior of Spin-Orbit Inelastic Scattering of C-Atoms by D(2) at Low Energy

Fine-structure populations and collision–induced energy transfer in atoms are of interest for many fields, from combustion to astrophysics. In particular, neutral carbon atoms are known to play a role in interstellar media, either as probes of physical conditions (ground state (3)P(j) spin-orbit pop...

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Autores principales: Bergeat, Astrid, Morales, Sébastien B., Naulin, Christian, Kłos, Jacek, Lique, François
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6448599/
https://www.ncbi.nlm.nih.gov/pubmed/30984737
http://dx.doi.org/10.3389/fchem.2019.00164
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author Bergeat, Astrid
Morales, Sébastien B.
Naulin, Christian
Kłos, Jacek
Lique, François
author_facet Bergeat, Astrid
Morales, Sébastien B.
Naulin, Christian
Kłos, Jacek
Lique, François
author_sort Bergeat, Astrid
collection PubMed
description Fine-structure populations and collision–induced energy transfer in atoms are of interest for many fields, from combustion to astrophysics. In particular, neutral carbon atoms are known to play a role in interstellar media, either as probes of physical conditions (ground state (3)P(j) spin-orbit populations), or as cooling agent (collisional excitation followed by radiative decay). This work aims at investigating the spin-orbit excitation of atomic carbon in its ground electronic state due to collisions with molecular deuterium, an isotopic variant of H(2), the most abundant molecule in the interstellar medium. Spin-orbit excitations of C((3)P(j)) by H(2) or D(2) are governed by non-adiabatic and spin-orbit couplings, which make the theoretical treatment challenging, since the Born-Oppenheimer approximation no longer holds. Inelastic collisional cross-sections were determined for the C((3)P(0)) + D(2) → C((3)P(j)) + D(2) (with j = 1 and 2) excitation process. Experimental data were acquired in a crossed beam experiment at low collision energies, down to the excitation thresholds (at 16.42 and 43.41 cm(−1), respectively). C-atoms were produced mainly in their ground spin-orbit state, (3)P(0), by dissociation of CO in a dielectric discharge through an Even-Lavie pulsed valve. The C-atom beam was crossed with a D(2) beam from a second valve. The state-to-state cross-sections were derived from the C((3)P(j)) (j = 1 or 2) signal measured as a function of the beam crossing angle, i.e., as a function of the collision energy. The results show different quantum behaviors for excitation to C((3)P(1)) or C((3)P(2)) when C((3)P(0)) collides with ortho-D(2) or normal-D(2). These experimental results are analyzed and discussed in the light of highly accurate quantum calculations. A good agreement between experimental and theoretical results is found. The present data are compared with those obtained for the C-He and C-H(2) collisional systems to get new insights into the dynamics of collision induced spin-orbit excitation/relaxation of atomic carbon.
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spelling pubmed-64485992019-04-12 Quantum Behavior of Spin-Orbit Inelastic Scattering of C-Atoms by D(2) at Low Energy Bergeat, Astrid Morales, Sébastien B. Naulin, Christian Kłos, Jacek Lique, François Front Chem Chemistry Fine-structure populations and collision–induced energy transfer in atoms are of interest for many fields, from combustion to astrophysics. In particular, neutral carbon atoms are known to play a role in interstellar media, either as probes of physical conditions (ground state (3)P(j) spin-orbit populations), or as cooling agent (collisional excitation followed by radiative decay). This work aims at investigating the spin-orbit excitation of atomic carbon in its ground electronic state due to collisions with molecular deuterium, an isotopic variant of H(2), the most abundant molecule in the interstellar medium. Spin-orbit excitations of C((3)P(j)) by H(2) or D(2) are governed by non-adiabatic and spin-orbit couplings, which make the theoretical treatment challenging, since the Born-Oppenheimer approximation no longer holds. Inelastic collisional cross-sections were determined for the C((3)P(0)) + D(2) → C((3)P(j)) + D(2) (with j = 1 and 2) excitation process. Experimental data were acquired in a crossed beam experiment at low collision energies, down to the excitation thresholds (at 16.42 and 43.41 cm(−1), respectively). C-atoms were produced mainly in their ground spin-orbit state, (3)P(0), by dissociation of CO in a dielectric discharge through an Even-Lavie pulsed valve. The C-atom beam was crossed with a D(2) beam from a second valve. The state-to-state cross-sections were derived from the C((3)P(j)) (j = 1 or 2) signal measured as a function of the beam crossing angle, i.e., as a function of the collision energy. The results show different quantum behaviors for excitation to C((3)P(1)) or C((3)P(2)) when C((3)P(0)) collides with ortho-D(2) or normal-D(2). These experimental results are analyzed and discussed in the light of highly accurate quantum calculations. A good agreement between experimental and theoretical results is found. The present data are compared with those obtained for the C-He and C-H(2) collisional systems to get new insights into the dynamics of collision induced spin-orbit excitation/relaxation of atomic carbon. Frontiers Media S.A. 2019-03-28 /pmc/articles/PMC6448599/ /pubmed/30984737 http://dx.doi.org/10.3389/fchem.2019.00164 Text en Copyright © 2019 Bergeat, Morales, Naulin, Kłos and Lique. http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Chemistry
Bergeat, Astrid
Morales, Sébastien B.
Naulin, Christian
Kłos, Jacek
Lique, François
Quantum Behavior of Spin-Orbit Inelastic Scattering of C-Atoms by D(2) at Low Energy
title Quantum Behavior of Spin-Orbit Inelastic Scattering of C-Atoms by D(2) at Low Energy
title_full Quantum Behavior of Spin-Orbit Inelastic Scattering of C-Atoms by D(2) at Low Energy
title_fullStr Quantum Behavior of Spin-Orbit Inelastic Scattering of C-Atoms by D(2) at Low Energy
title_full_unstemmed Quantum Behavior of Spin-Orbit Inelastic Scattering of C-Atoms by D(2) at Low Energy
title_short Quantum Behavior of Spin-Orbit Inelastic Scattering of C-Atoms by D(2) at Low Energy
title_sort quantum behavior of spin-orbit inelastic scattering of c-atoms by d(2) at low energy
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6448599/
https://www.ncbi.nlm.nih.gov/pubmed/30984737
http://dx.doi.org/10.3389/fchem.2019.00164
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