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Collisional Quantum Dynamics for MgH(−) ((1)Σ(+)) With He as a Buffer Gas: Ionic State-Changing Reactions in Cold Traps

We present in this paper a detailed theoretical and computational analysis of the quantum inelastic dynamics involving the lower rotational levels of the MgH(−) (X(1)Σ(+)) molecular anion in collision with He atoms which provide the buffer gas in a cold trap. The interaction potential between the mo...

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Autores principales: González-Sánchez, Lola, Gómez-Carrasco, Susana, Santadaría, Alberto M., Wester, Roland, Gianturco, Francesco A.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6379277/
https://www.ncbi.nlm.nih.gov/pubmed/30809520
http://dx.doi.org/10.3389/fchem.2019.00064
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author González-Sánchez, Lola
Gómez-Carrasco, Susana
Santadaría, Alberto M.
Wester, Roland
Gianturco, Francesco A.
author_facet González-Sánchez, Lola
Gómez-Carrasco, Susana
Santadaría, Alberto M.
Wester, Roland
Gianturco, Francesco A.
author_sort González-Sánchez, Lola
collection PubMed
description We present in this paper a detailed theoretical and computational analysis of the quantum inelastic dynamics involving the lower rotational levels of the MgH(−) (X(1)Σ(+)) molecular anion in collision with He atoms which provide the buffer gas in a cold trap. The interaction potential between the molecular partner and the He ((1)S) gaseous atoms is obtained from accurate quantum chemical calculations at the post-Hartree-Fock level as described in this paper. The spatial features and the interaction strength of the present potential energy surface (PES) are analyzed in detail and in comparison with similar, earlier results involving the MgH(+) ((1)Σ) cation interacting with He atoms. The quantum, multichannel dynamics is then carried out using the newly obtained PES and the final inelastic rats constants, over the range of temperatures which are expected to be present in a cold ion trap experiment, are obtained to generate the multichannel kinetics of population changes observed for the molecular ion during the collisional cooling process. The rotational populations finally achieved at specific temperatures are linked to state-selective laser photo-detachment experiments to be carried out in our laboratory.All intermediate steps of the quantum modeling are also compared with the behavior of the corresponding MgH(+) cation in the trap and the marked differences which exist between the collisional dynamics of the two systems are dicussed and explained. The feasibility of the present anion to be involved in state-selective photo-detachment experiments is fully analyzed and suggestions are made for the best performing conditions to be selected during trap experiments.
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spelling pubmed-63792772019-02-26 Collisional Quantum Dynamics for MgH(−) ((1)Σ(+)) With He as a Buffer Gas: Ionic State-Changing Reactions in Cold Traps González-Sánchez, Lola Gómez-Carrasco, Susana Santadaría, Alberto M. Wester, Roland Gianturco, Francesco A. Front Chem Chemistry We present in this paper a detailed theoretical and computational analysis of the quantum inelastic dynamics involving the lower rotational levels of the MgH(−) (X(1)Σ(+)) molecular anion in collision with He atoms which provide the buffer gas in a cold trap. The interaction potential between the molecular partner and the He ((1)S) gaseous atoms is obtained from accurate quantum chemical calculations at the post-Hartree-Fock level as described in this paper. The spatial features and the interaction strength of the present potential energy surface (PES) are analyzed in detail and in comparison with similar, earlier results involving the MgH(+) ((1)Σ) cation interacting with He atoms. The quantum, multichannel dynamics is then carried out using the newly obtained PES and the final inelastic rats constants, over the range of temperatures which are expected to be present in a cold ion trap experiment, are obtained to generate the multichannel kinetics of population changes observed for the molecular ion during the collisional cooling process. The rotational populations finally achieved at specific temperatures are linked to state-selective laser photo-detachment experiments to be carried out in our laboratory.All intermediate steps of the quantum modeling are also compared with the behavior of the corresponding MgH(+) cation in the trap and the marked differences which exist between the collisional dynamics of the two systems are dicussed and explained. The feasibility of the present anion to be involved in state-selective photo-detachment experiments is fully analyzed and suggestions are made for the best performing conditions to be selected during trap experiments. Frontiers Media S.A. 2019-02-12 /pmc/articles/PMC6379277/ /pubmed/30809520 http://dx.doi.org/10.3389/fchem.2019.00064 Text en Copyright © 2019 González-Sánchez, Gómez-Carrasco, Santadaría, Wester and Gianturco. 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
González-Sánchez, Lola
Gómez-Carrasco, Susana
Santadaría, Alberto M.
Wester, Roland
Gianturco, Francesco A.
Collisional Quantum Dynamics for MgH(−) ((1)Σ(+)) With He as a Buffer Gas: Ionic State-Changing Reactions in Cold Traps
title Collisional Quantum Dynamics for MgH(−) ((1)Σ(+)) With He as a Buffer Gas: Ionic State-Changing Reactions in Cold Traps
title_full Collisional Quantum Dynamics for MgH(−) ((1)Σ(+)) With He as a Buffer Gas: Ionic State-Changing Reactions in Cold Traps
title_fullStr Collisional Quantum Dynamics for MgH(−) ((1)Σ(+)) With He as a Buffer Gas: Ionic State-Changing Reactions in Cold Traps
title_full_unstemmed Collisional Quantum Dynamics for MgH(−) ((1)Σ(+)) With He as a Buffer Gas: Ionic State-Changing Reactions in Cold Traps
title_short Collisional Quantum Dynamics for MgH(−) ((1)Σ(+)) With He as a Buffer Gas: Ionic State-Changing Reactions in Cold Traps
title_sort collisional quantum dynamics for mgh(−) ((1)σ(+)) with he as a buffer gas: ionic state-changing reactions in cold traps
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6379277/
https://www.ncbi.nlm.nih.gov/pubmed/30809520
http://dx.doi.org/10.3389/fchem.2019.00064
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