Publication
Title
Ensemble-based molecular simulation of chemical reactions under vibrational nonequilibrium
Author
Abstract
We present an approach to incorporate the effect of vibrational nonequilibrium in molecular dynamics (MD) simulations. A perturbed canonical ensemble, in which selected modes are excited to higher temperature while all others remain equilibrated at low temperature, is simulated by applying a specifically tailored bias potential. Our method can be readily applied to any (classical or quantum mechanical) MD setup at virtually no additional computational cost and allows the study of reactions of vibrationally excited molecules in nonequilibrium environments such as plasmas. In combination with enhanced sampling methods, the vibrational efficacy and mode selectivity of vibrationally stimulated reactions can then be quantified in terms of chemically relevant observables, such as reaction rates and apparent free energy barriers. We first validate our method for the prototypical hydrogen exchange reaction and then show how it can capture the effect of vibrational excitation on a symmetric SN2 reaction and radical addition on CO2.
Language
English
Source (journal)
The journal of physical chemistry letters / American Chemical Society. - Washington, D.C, 2010, currens
Publication
Washington, D.C : American Chemical Society , 2020
ISSN
1948-7185
DOI
10.1021/ACS.JPCLETT.9B03356
Volume/pages
11 :2 (2020) , p. 401-406
ISI
000508473400008
Pubmed ID
31865709
Full text (Publisher's DOI)
Full text (open access)
Full text (publisher's version - intranet only)
UAntwerpen
Faculty/Department
Research group
Project info
Multi-scale modeling of plasma catalysis/
CalcUA as central calculation facility: supporting core facilities.
Publication type
Subject
Affiliation
Publications with a UAntwerp address
External links
Web of Science
Record
Identifier
Creation 30.01.2020
Last edited 06.01.2025
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