Quantum Dynamics and Kinetics of the F + H2 and F + D2 Reactions at Low and Ultra-Low Temperatures

Integral cross sections and rate constants for the prototypical chemical reactions of the fluorine atom with molecular hydrogen and deuterium have been calculated over a wide interval of collision energy and temperature ranging from the sub-thermal (50 K) down to the ultra-cold regimes (0.5 mK). Rig...

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Main Authors: Dario De Fazio, Vincenzo Aquilanti, Simonetta Cavalli
Format: Article
Language:English
Published: Frontiers Media S.A. 2019-05-01
Series:Frontiers in Chemistry
Subjects:
Online Access:https://www.frontiersin.org/article/10.3389/fchem.2019.00328/full
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spelling doaj-0aca6aab544c4894a09aa2e18d566caf2020-11-24T21:51:14ZengFrontiers Media S.A.Frontiers in Chemistry2296-26462019-05-01710.3389/fchem.2019.00328452927Quantum Dynamics and Kinetics of the F + H2 and F + D2 Reactions at Low and Ultra-Low TemperaturesDario De Fazio0Vincenzo Aquilanti1Simonetta Cavalli2Istituto di Struttura della Materia, Consiglio Nazionale Delle Ricerche (CNR), Rome, ItalyDipartimento di Chimica, Biologia e Biotecnologie, Università degli Studi di Perugia, Perugia, ItalyDipartimento di Chimica, Biologia e Biotecnologie, Università degli Studi di Perugia, Perugia, ItalyIntegral cross sections and rate constants for the prototypical chemical reactions of the fluorine atom with molecular hydrogen and deuterium have been calculated over a wide interval of collision energy and temperature ranging from the sub-thermal (50 K) down to the ultra-cold regimes (0.5 mK). Rigorous close coupling time-independent quantum reactive scattering calculations have been carried out on two potential energy surfaces, differing only at long-range in the reactants' channel. The results show that tunnel, resonance and virtual state effects enhance under-barrier reactivity giving rise to pronounced deviations from the Arrhenius law as temperature is lowered. Within the ultra-cold domain (below 1 mK), the reactivity is governed by virtual state effects and by tunneling through the reaction barrier; in the cold regime (1 mK–1 K), the shape resonances in the entrance channel of the potential energy surface make the quantum tunneling contribution larger so enhancing cross sections and rate constants by about one order of magnitude; at higher temperatures (above 10 K), the tunneling pathway enhanced by the constructive interference between two Feshbach resonances trapped in the reaction exit channel competes with the thermally activated mechanism, as the energy gets closer to the reaction barrier height. The results show that at low temperatures cross sections and rate constants are extremely sensitive to small changes in the long-range intermolecular interaction in the entrance channel of the potential energy surface, as well as to isotopic substitution.https://www.frontiersin.org/article/10.3389/fchem.2019.00328/fullscattering resonancestunnel effectWigner threshold lawkinetic isotope effectcold and ultra-cold collisions
collection DOAJ
language English
format Article
sources DOAJ
author Dario De Fazio
Vincenzo Aquilanti
Simonetta Cavalli
spellingShingle Dario De Fazio
Vincenzo Aquilanti
Simonetta Cavalli
Quantum Dynamics and Kinetics of the F + H2 and F + D2 Reactions at Low and Ultra-Low Temperatures
Frontiers in Chemistry
scattering resonances
tunnel effect
Wigner threshold law
kinetic isotope effect
cold and ultra-cold collisions
author_facet Dario De Fazio
Vincenzo Aquilanti
Simonetta Cavalli
author_sort Dario De Fazio
title Quantum Dynamics and Kinetics of the F + H2 and F + D2 Reactions at Low and Ultra-Low Temperatures
title_short Quantum Dynamics and Kinetics of the F + H2 and F + D2 Reactions at Low and Ultra-Low Temperatures
title_full Quantum Dynamics and Kinetics of the F + H2 and F + D2 Reactions at Low and Ultra-Low Temperatures
title_fullStr Quantum Dynamics and Kinetics of the F + H2 and F + D2 Reactions at Low and Ultra-Low Temperatures
title_full_unstemmed Quantum Dynamics and Kinetics of the F + H2 and F + D2 Reactions at Low and Ultra-Low Temperatures
title_sort quantum dynamics and kinetics of the f + h2 and f + d2 reactions at low and ultra-low temperatures
publisher Frontiers Media S.A.
series Frontiers in Chemistry
issn 2296-2646
publishDate 2019-05-01
description Integral cross sections and rate constants for the prototypical chemical reactions of the fluorine atom with molecular hydrogen and deuterium have been calculated over a wide interval of collision energy and temperature ranging from the sub-thermal (50 K) down to the ultra-cold regimes (0.5 mK). Rigorous close coupling time-independent quantum reactive scattering calculations have been carried out on two potential energy surfaces, differing only at long-range in the reactants' channel. The results show that tunnel, resonance and virtual state effects enhance under-barrier reactivity giving rise to pronounced deviations from the Arrhenius law as temperature is lowered. Within the ultra-cold domain (below 1 mK), the reactivity is governed by virtual state effects and by tunneling through the reaction barrier; in the cold regime (1 mK–1 K), the shape resonances in the entrance channel of the potential energy surface make the quantum tunneling contribution larger so enhancing cross sections and rate constants by about one order of magnitude; at higher temperatures (above 10 K), the tunneling pathway enhanced by the constructive interference between two Feshbach resonances trapped in the reaction exit channel competes with the thermally activated mechanism, as the energy gets closer to the reaction barrier height. The results show that at low temperatures cross sections and rate constants are extremely sensitive to small changes in the long-range intermolecular interaction in the entrance channel of the potential energy surface, as well as to isotopic substitution.
topic scattering resonances
tunnel effect
Wigner threshold law
kinetic isotope effect
cold and ultra-cold collisions
url https://www.frontiersin.org/article/10.3389/fchem.2019.00328/full
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