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HeH(+) Collisions with H(2): Rotationally Inelastic Cross Sections and Rate Coefficients from Quantum Dynamics at Interstellar Temperatures

[Image: see text] We report for the first time an accurate ab initio potential energy surface for the HeH(+)–H(2) system in four dimensions (4D) treating both diatomic species as rigid rotors. The computed ab initio potential energy point values are fitted using an artificial neural network method a...

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Autores principales: Giri, K., González-Sánchez, L., Biswas, Rupayan, Yurtsever, E., Gianturco, F. A., Sathyamurthy, N., Lourderaj, U., Wester, R.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2022
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9014418/
https://www.ncbi.nlm.nih.gov/pubmed/35363491
http://dx.doi.org/10.1021/acs.jpca.1c10309
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author Giri, K.
González-Sánchez, L.
Biswas, Rupayan
Yurtsever, E.
Gianturco, F. A.
Sathyamurthy, N.
Lourderaj, U.
Wester, R.
author_facet Giri, K.
González-Sánchez, L.
Biswas, Rupayan
Yurtsever, E.
Gianturco, F. A.
Sathyamurthy, N.
Lourderaj, U.
Wester, R.
author_sort Giri, K.
collection PubMed
description [Image: see text] We report for the first time an accurate ab initio potential energy surface for the HeH(+)–H(2) system in four dimensions (4D) treating both diatomic species as rigid rotors. The computed ab initio potential energy point values are fitted using an artificial neural network method and used in quantum close coupling calculations for different initial states of both rotors, in their ground electronic states, over a range of collision energies. The state-to-state cross section results are used to compute the rate coefficients over a range of temperatures relevant to interstellar conditions. By comparing the four dimensional quantum results with those obtained by a reduced-dimensions approach that treats the H(2) molecule as an averaged, nonrotating target, it is shown that the reduced dimensionality results are in good accord with the four dimensional results as long as the HeH(+) molecule is not initially rotationally excited. By further comparing the present rate coefficients with those for HeH(+)–H and for HeH(+)–He, we demonstrate that H(2) molecules are the most effective collision partners in inducing rotational excitation in HeH(+) cation at interstellar temperatures. The rotationally inelastic rates involving o-H(2) and p-H(2) excitations are also obtained and they turn out to be, as in previous systems, orders of magnitude smaller than those involving the cation. The results for the H(2) molecular partner clearly indicate its large energy-transfer efficiency to the HeH(+) system, thereby confirming its expected importance within the kinetics networks involving HeH(+) in interstellar environments.
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spelling pubmed-90144182022-04-19 HeH(+) Collisions with H(2): Rotationally Inelastic Cross Sections and Rate Coefficients from Quantum Dynamics at Interstellar Temperatures Giri, K. González-Sánchez, L. Biswas, Rupayan Yurtsever, E. Gianturco, F. A. Sathyamurthy, N. Lourderaj, U. Wester, R. J Phys Chem A [Image: see text] We report for the first time an accurate ab initio potential energy surface for the HeH(+)–H(2) system in four dimensions (4D) treating both diatomic species as rigid rotors. The computed ab initio potential energy point values are fitted using an artificial neural network method and used in quantum close coupling calculations for different initial states of both rotors, in their ground electronic states, over a range of collision energies. The state-to-state cross section results are used to compute the rate coefficients over a range of temperatures relevant to interstellar conditions. By comparing the four dimensional quantum results with those obtained by a reduced-dimensions approach that treats the H(2) molecule as an averaged, nonrotating target, it is shown that the reduced dimensionality results are in good accord with the four dimensional results as long as the HeH(+) molecule is not initially rotationally excited. By further comparing the present rate coefficients with those for HeH(+)–H and for HeH(+)–He, we demonstrate that H(2) molecules are the most effective collision partners in inducing rotational excitation in HeH(+) cation at interstellar temperatures. The rotationally inelastic rates involving o-H(2) and p-H(2) excitations are also obtained and they turn out to be, as in previous systems, orders of magnitude smaller than those involving the cation. The results for the H(2) molecular partner clearly indicate its large energy-transfer efficiency to the HeH(+) system, thereby confirming its expected importance within the kinetics networks involving HeH(+) in interstellar environments. American Chemical Society 2022-04-01 2022-04-14 /pmc/articles/PMC9014418/ /pubmed/35363491 http://dx.doi.org/10.1021/acs.jpca.1c10309 Text en © 2022 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by/4.0/Permits the broadest form of re-use including for commercial purposes, provided that author attribution and integrity are maintained (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Giri, K.
González-Sánchez, L.
Biswas, Rupayan
Yurtsever, E.
Gianturco, F. A.
Sathyamurthy, N.
Lourderaj, U.
Wester, R.
HeH(+) Collisions with H(2): Rotationally Inelastic Cross Sections and Rate Coefficients from Quantum Dynamics at Interstellar Temperatures
title HeH(+) Collisions with H(2): Rotationally Inelastic Cross Sections and Rate Coefficients from Quantum Dynamics at Interstellar Temperatures
title_full HeH(+) Collisions with H(2): Rotationally Inelastic Cross Sections and Rate Coefficients from Quantum Dynamics at Interstellar Temperatures
title_fullStr HeH(+) Collisions with H(2): Rotationally Inelastic Cross Sections and Rate Coefficients from Quantum Dynamics at Interstellar Temperatures
title_full_unstemmed HeH(+) Collisions with H(2): Rotationally Inelastic Cross Sections and Rate Coefficients from Quantum Dynamics at Interstellar Temperatures
title_short HeH(+) Collisions with H(2): Rotationally Inelastic Cross Sections and Rate Coefficients from Quantum Dynamics at Interstellar Temperatures
title_sort heh(+) collisions with h(2): rotationally inelastic cross sections and rate coefficients from quantum dynamics at interstellar temperatures
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9014418/
https://www.ncbi.nlm.nih.gov/pubmed/35363491
http://dx.doi.org/10.1021/acs.jpca.1c10309
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