Mean first-passage times for solvated LiCN isomerization at intermediate to high temperatures
Entity
UAM. Departamento de QuímicaPublisher
AIP PublishingDate
2022-01-18Citation
10.1063/5.0065090
The journal of chemical physics 156 (2022): 034103
ISSN
0021-9606 (print); 1089-7690 (online)DOI
10.1063/5.0065090Project
Gobierno de España. PGC2018-093854-B-I00; info:eu-repo/grantAgreement/EC/H2020/734557Editor's Version
https://doi.org/10.1063/5.0065090Subjects
Theory of Kramer; Mean first-passage times (MFPTs); Pollak–Grabert–Hänggi (PGH); LiNC ⇌ LiCN isomerization; QuímicaNote
The following article appeared in The Journal of Chemical Physics 156 (2022): 034103 and may be found at https://aip.scitation.org/doi/full/10.1063/5.0065090Rights
© 2022 Author(s)Abstract
The behavior of a particle in a solvent has been framed using stochastic dynamics since the early theory of Kramers. A particle in a chemical reaction reacts slower in a diluted solvent because of the lack of energy transfer via collisions. The flux-over-population reaction rate constant rises with increasing density before falling again for very dense solvents. This Kramers turnover is observed in this paper at intermediate and high temperatures in the backward reaction of the LiNC ⇌ LiCN isomerization via Langevin dynamics and mean first-passage times (MFPTs). It is in good agreement with the Pollak-Grabert-Hänggi (PGH) reaction rates at lower temperatures. Furthermore, we find a square root behavior of the reaction rate at high temperatures and have made direct comparisons of the methods in the intermediate- and high-temperature regimes, all suggesting increased ranges in accuracy of both the PGH and MFPT approaches
Files in this item
Google Scholar:Schleeh, Micha M.
-
Reiff, Johannes
-
García-Müller, Pablo L.
-
Benito, Rosa M.
-
Borondo, Florentino
-
Main, Jörg
-
Hernandez, Rigoberto
This item appears in the following Collection(s)
Related items
Showing items related by title, author, creator and subject.