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Computational design of next generation atom transfer radical polymerization ligands

dc.contributor.authorStewart, Madeleine
dc.contributor.authorYu, Li-Juan
dc.contributor.authorSherburn, Michael
dc.contributor.authorCoote, Michelle
dc.date.accessioned2023-10-16T04:42:30Z
dc.date.available2023-10-16T04:42:30Z
dc.date.issued2022
dc.description.abstractBenchmarked density functional theory is used to design and evaluate a series of novel atom transfer radical polymerization (ATRP) catalysts with a view to identifying those which best promote a model ATRP reaction between the [LCuI]+ catalyst and methyl a-bromoisobutyrate in acetonitrile. Calculations were performed at the .B97XD/Def2TZVP//.B97XD/SDD/6-31G(d) level of theory with CPCM solvent corrections. Locating the axial N of the tetradentate ATRP ligand at a sterically unhindered quinuclidine bridgehead site, with the cage carrying three pendant 2-pyridyl arms to serve as equatorial ligands causes a significant increase in activity. The effects are greater for the CH2-linked quinuclidine cages compared with the O-linked cages, although both systems out-perform the best available ATRP ligands in current use. Inclusion of this cage structure introduces opportunities for stereoisomerism, and while all stereoisomers examined function as effective catalysts, there is significant variation in performance. Incorporation of electron donating 4-(dialkylamino) groups on the 2-pyridyl arms improves ligand activity by stabilizing CuII over CuI, however, one needs to be careful of unfavorable steric crowding, particularly for some stereoisomers. Replacing the 2-pyridyl arms with other types of neutral heterocycles, such as NHC-containing heterocycles and imidazoles, does not appear to offer an advantage over pyridine. However, ligands with negatively charged donor nitrogens could offer 10 orders of magnitude improvement in catalyst activity over the best available neutral ligands, which could help make ATRP and other small molecule processes that employ ATRP catalysts applicable to unactivated alkyl halides.en_AU
dc.description.sponsorshipThe authors acknowledge an ARC Laureate Fellowship to M. L. C. (FL170100041), ARC Discovery funding to M. S. S. (DP160104322) and generous supercomputing time from the National Computational Infrastructure.en_AU
dc.format.mimetypeapplication/pdfen_AU
dc.identifier.issn1759-9954en_AU
dc.identifier.urihttp://hdl.handle.net/1885/303327
dc.language.isoen_AUen_AU
dc.provenancehttps://v2.sherpa.ac.uk/id/publication/18032..."Author accepted manuscript can be made open access on non-commercial institutional repository after 12 month embargo" from SHERPA/RoMEO site (as at 16.10.2023).en_AU
dc.publisherResearch School of Chemistryen_AU
dc.relationhttp://purl.org/au-research/grants/arc/FL170100041en_AU
dc.relationhttp://purl.org/au-research/grants/arc/DP160104322en_AU
dc.rights© 2022 The Royal Society of Chemistryen_AU
dc.sourcePolymer Chemistryen_AU
dc.titleComputational design of next generation atom transfer radical polymerization ligandsen_AU
dc.typeJournal articleen_AU
dcterms.accessRightsOpen Accessen_AU
dcterms.dateAccepted2020-01-20
local.bibliographicCitation.issue8en_AU
local.bibliographicCitation.lastpage1074en_AU
local.bibliographicCitation.startpage1067en_AU
local.contributor.affiliationStewart, Madeleine, Research School of Chemistry, ANUen_AU
local.contributor.affiliationYu, Lijuan, Research School of Chemistry, ANUen_AU
local.contributor.affiliationSherburn, Mick, Research School of Chemistry, ANUen_AU
local.contributor.affiliationCoote, Michelle, Research School of Chemistry, ANUen_AU
local.contributor.authoruidYu, Lijuan, u1055437en_AU
local.contributor.authoruidSherburn, Mick, u4053118en_AU
local.contributor.authoruidCoote, Michelle, u4031074en_AU
local.identifier.ariespublicationa383154xPUB26057en_AU
local.identifier.citationvolume13en_AU
local.identifier.doi10.1039/D1PY01716Ken_AU
local.publisher.urlhttps://pubs.rsc.org/en_AU
local.type.statusAccepted Versionen_AU

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