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Kinetic isotope effects and how to describe them
JournalArticle (Originalarbeit in einer wissenschaftlichen Zeitschrift)
 
ID 4527457
Author(s) Karandashev, Konstantin; Xu, Zhen-Hao; Meuwly, Markus; Vaníček, Jiří; Richardson, Jeremy O.
Author(s) at UniBasel Meuwly, Markus
Year 2017
Title Kinetic isotope effects and how to describe them
Journal Structural Dynamics
Volume 4
Number 6
Pages / Article-Number 061501
Abstract We review several methods for computing kinetic isotope effects in chemical reactions including semiclassical and quantum instanton theory. These methods describe both the quantization of vibrational modes as well as tunneling and are applied to the ⋅H + H 2 and ⋅H + CH 4 reactions. The absolute rate constants computed with the semiclassical instanton method both using on-the-fly electronic structure calculations and fitted potential-energy surfaces are also compared directly with exact quantum dynamics results. The error inherent in the instanton approximation is found to be relatively small and similar in magnitude to that introduced by using fitted surfaces. The kinetic isotope effect computed by the quantum instanton is even more accurate, and although it is computationally more expensive, the efficiency can be improved by path-integral acceleration techniques. We also test a simple approach for designing potential-energy surfaces for the example of proton transfer in malonaldehyde. The tunneling splittings are computed, and although they are found to deviate from experimental results, the ratio of the splitting to that of an isotopically substituted form is in much better agreement. We discuss the strengths and limitations of the potential-energy surface and based on our findings suggest ways in which it can be improved.
Publisher AIP Publishing
ISSN/ISBN 2329-7778
edoc-URL https://edoc.unibas.ch/94253/
Full Text on edoc Restricted
Digital Object Identifier DOI 10.1063/1.4996339
PubMed ID http://www.ncbi.nlm.nih.gov/pubmed/29282447
ISI-Number WOS:000419721000002
Document type (ISI) Journal Article, Review
 
   

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