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dc.contributor.author
Laude, Gabriel
dc.contributor.author
Calderini, Danilo
dc.contributor.author
Welsch, Ralph
dc.contributor.author
Richardson, Jeremy
dc.date.accessioned
2020-09-03T10:52:24Z
dc.date.available
2020-07-15T11:58:38Z
dc.date.available
2020-07-15T12:23:41Z
dc.date.available
2020-08-06T09:30:40Z
dc.date.available
2020-09-03T10:47:08Z
dc.date.available
2020-09-03T10:52:24Z
dc.date.issued
2020-08
dc.identifier.issn
1463-9084
dc.identifier.issn
1463-9076
dc.identifier.other
10.1039/d0cp01346c
en_US
dc.identifier.uri
http://hdl.handle.net/20.500.11850/426458
dc.identifier.doi
10.3929/ethz-b-000426458
dc.description.abstract
Thermal rate constants for Mu + CH4, Mu + C2H6 and Mu + C3H8 and their equivalent reactions with H were evaluated with ab initio instanton rate theory. The potential-energy surfaces are fitted using Gaussian process regression to high-level electronic-structure calculations evaluated around the tunnelling pathway. This method was able to successfully reproduce various experimental measurements for the rate constant of these reactions. However, it was not able to reproduce the faster-than-expected rate of Mu + C3H8 at 300 K reported by Fleming et al. [Phys. Chem. Chem. Phys., 2015, 17, 19901 and Phys. Chem. Chem. Phys., 2020, 22, 6326]. Analysis of our results indicates that the kinetic isotope effect at this temperature is not significantly influenced by quantum tunnelling. We consider many possible factors for the discrepancy between theory and experiment but conclude that in each case, the instanton approximation is unlikely to be the cause of the error. This is in part based on the good agreement we find between the instanton predictions and new multiconfigurational time-dependent Hartree (MCTDH) calculations for Mu + CH4 using the same potential-energy surface. Further experiments will therefore be needed to resolve this issue.
en_US
dc.format
application/pdf
en_US
dc.language.iso
en
en_US
dc.publisher
Royal Society of Chemistry
en_US
dc.rights.uri
http://creativecommons.org/licenses/by-nc/3.0/
dc.title
Calculations of quantum tunnelling rates for muonium reactions with methane, ethane and propane
en_US
dc.type
Journal Article
dc.rights.license
Creative Commons Attribution-NonCommercial 3.0 Unported
dc.date.published
2020-07-06
ethz.journal.title
Physical Chemistry Chemical Physics
ethz.journal.volume
22
en_US
ethz.journal.abbreviated
Phys. Chem. Chem. Phys.
ethz.pages.start
16843
en_US
ethz.pages.end
16854
en_US
ethz.size
12 p.
en_US
ethz.version.deposit
publishedVersion
en_US
ethz.grant
Quantum Tunnelling in Molecular Systems from First Principles
en_US
ethz.identifier.wos
ethz.identifier.scopus
ethz.publication.status
published
en_US
ethz.leitzahl
ETH Zürich::00002 - ETH Zürich::00012 - Lehre und Forschung::00007 - Departemente::02020 - Dep. Chemie und Angewandte Biowiss. / Dep. of Chemistry and Applied Biosc.::02543 - Inst. f. Molekulare Physikalische Wiss. / Institute of Molecular Physical Science::09602 - Richardson, Jeremy / Richardson, Jeremy
en_US
ethz.leitzahl.certified
ETH Zürich::00002 - ETH Zürich::00012 - Lehre und Forschung::00007 - Departemente::02020 - Dep. Chemie und Angewandte Biowiss. / Dep. of Chemistry and Applied Biosc.::02543 - Inst. f. Molekulare Physikalische Wiss. / Institute of Molecular Physical Science::09602 - Richardson, Jeremy / Richardson, Jeremy
en_US
ethz.grant.agreementno
175696
ethz.grant.agreementno
175696
ethz.grant.fundername
SNF
ethz.grant.fundername
SNF
ethz.grant.funderDoi
10.13039/501100001711
ethz.grant.funderDoi
10.13039/501100001711
ethz.grant.program
Projekte MINT
ethz.date.deposited
2020-07-15T11:58:47Z
ethz.source
FORM
ethz.eth
yes
en_US
ethz.availability
Open access
en_US
ethz.rosetta.installDate
2020-09-03T10:52:34Z
ethz.rosetta.lastUpdated
2024-02-02T11:58:30Z
ethz.rosetta.exportRequired
true
ethz.rosetta.versionExported
true
ethz.COinS
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