Please use this identifier to cite or link to this item: https://hdl.handle.net/1959.11/58183
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dc.contributor.authorLu, Wenen
dc.contributor.authorO'Reilly, Robert Jen
dc.date.accessioned2024-04-08T02:16:19Z-
dc.date.available2024-04-08T02:16:19Z-
dc.date.issued2022-12-23-
dc.identifier.citationMongolian Journal of Chemistry, 23(49), p. 9-18en
dc.identifier.issn2414-0082en
dc.identifier.issn2226-6739en
dc.identifier.urihttps://hdl.handle.net/1959.11/58183-
dc.description.abstract<p>This study reports accurate gas-phase homolytic B–Cl bond dissociation energies, obtained using the benchmark-quality W1w thermochemical protocol, for a set of 25 chloroborane-type molecules (known herein as the BCl25BDE dataset). The BDEs of these species differ by as much as 136.6 kJ mol<sup>–1</sup> at 298 K, with (BH<sub>2</sub>)<sub>2</sub> BCl having the lowest BDE (388.5 kJ mol<sup>–1</sup> at 298 K) and (CH<sub>3</sub> )HBCl having the highest (525.1 kJ mol<sup>–1</sup>). Using the W1w BDEs as reference values, the accuracy of a diverse set of more economical DFT procedures (which may be applied to the study of molecules sufficiently large that the use of benchmark-quality methods such as W1w is rendered computationally prohibitive) have been investigated. As a result of this analysis, the most accurate methods for the computation of B–Cl BDEs are ωB97/A'VQZ (MAD = 3.0 kJ mol<sup>–1</sup>) and M06/A'VTZ (MAD = 3.2 kJ mol<sup>–1</sup>). The double-hybrid functional DSD-PBEP86 in conjunction with the A'VQZ basis set (MAD = 4.0 kJ mol<sup>–1</sup>) was found to give the lowest largest deviation (LD = 6.4 kJ mol<sup>–1</sup>) of any of methods considered in this assessment study.</p>en
dc.languageenen
dc.publisherMongolian Academy of Sciences, Institute of Chemistry and Chemical Technologyen
dc.relation.ispartofMongolian Journal of Chemistryen
dc.rightsAttribution 4.0 International*
dc.rights.urihttp://creativecommons.org/licenses/by/4.0/*
dc.titleHomolytic B–Cl bond dissociation energies of chloroborane-type moleculesen
dc.typeJournal Articleen
dc.identifier.doi10.5564/mjc.v23i49.2016en
dcterms.accessRightsUNE Greenen
local.contributor.firstnameWenen
local.contributor.firstnameRobert Jen
local.profile.schoolSchool of Science & Technologyen
local.profile.emailroreill6@une.edu.auen
local.output.categoryC1en
local.record.placeauen
local.record.institutionUniversity of New Englanden
local.publisher.placeMongoliaen
local.format.startpage9en
local.format.endpage18en
local.peerreviewedYesen
local.identifier.volume23en
local.identifier.issue49en
local.access.fulltextYesen
local.contributor.lastnameLuen
local.contributor.lastnameO'Reillyen
dc.identifier.staffune-id:roreill6en
local.profile.orcid0000-0002-5000-1920en
local.profile.roleauthoren
local.profile.roleauthoren
local.identifier.unepublicationidune:1959.11/58183en
dc.identifier.academiclevelAcademicen
dc.identifier.academiclevelAcademicen
local.title.maintitleHomolytic B–Cl bond dissociation energies of chloroborane-type moleculesen
local.output.categorydescriptionC1 Refereed Article in a Scholarly Journalen
local.search.authorLu, Wenen
local.search.authorO'Reilly, Robert Jen
local.open.fileurlhttps://rune.une.edu.au/web/retrieve/d9abd385-9438-42b8-8185-379351afde66en
local.uneassociationNoen
local.atsiresearchNoen
local.sensitive.culturalNoen
local.year.published2022en
local.fileurl.openhttps://rune.une.edu.au/web/retrieve/d9abd385-9438-42b8-8185-379351afde66en
local.fileurl.openpublishedhttps://rune.une.edu.au/web/retrieve/d9abd385-9438-42b8-8185-379351afde66en
local.subject.for20203407 Theoretical and computational chemistryen
local.subject.seo2020TBDen
local.profile.affiliationtypeExternal Affiliationen
local.profile.affiliationtypeExternal Affiliationen
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