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dc.contributor.authorLupi, Jacopo
dc.contributor.authorDooley, Stephen
dc.contributor.authorAyarde-Henríquez, Leandro
dc.date.accessioned2024-05-20T15:26:19Z
dc.date.available2024-05-20T15:26:19Z
dc.date.issued2024
dc.date.submitted2024en
dc.identifier.citationJacopo Lupi, Stephen Dooley, Leandro Ayarde-Henríquez, 'Hemicellulose pyrolysis: mechanism and kinetics of functionalized xylopyranose', 2024, Physical Chemistry Chemical Physics; 2024 Apr 24;26(16):12820-12837en
dc.identifier.otherY
dc.descriptionPUBLISHEDen
dc.description.abstractThis work analyzes the thermochemical kinetic influence of the most prominent functionalizations of the β-d-xylopyranose motif, specifically 4-methoxy, 5-carboxyl, and 2-O-acetyl, regarding the pyrolytic depolymerization mechanism. The gas-phase potential energy surface of the initial unimolecular decomposition reactions is computed with M06-2X/6-311++G(d,p), following which energies are refined using the G4 and CBS-QB3 composite methods. Rate constants are computed using the transition state theory. The energies are integrated within the atomization method to assess for the first time the standard enthalpy of formation of β-d-xylopyranose, 4-methoxy-5-carboxy-β-d-xylopyranose, and 2-O-acetyl-β-d-xylopyranose: −218.2, −263.1, and −300.0 kcal mol−1, respectively. For all isomers, the activation enthalpies of ring-opening are considerably lower, 43.8–47.5 kcal mol−1, than the ring-contraction and elimination processes, which show higher values ranging from 61.0–81.1 kcal mol−1. The functional groups exert a notable influence, lowering the barrier of discrete elementary reactions by 1.9–8.3 kcal mol−1, increasing thus the reaction rate constant by 0–4 orders of magnitude relative to unsubstituted species. Regardless of the functionalization, the ring-opening process appears to be the most kinetically favored, characterized by a rate constant on the order 101 s−1, exceeding significantly the values associated with ring-contraction and elimination, which fall in the range 10−4–10−10 s−1. This analysis shows the decomposition kinetics are contingent on the functionalization specificities and the relative orientation of reacting centers. A relatively simple chemical reactivity and bonding analysis partially support the elaborated thermokinetic approach. These insights hold significance as they imply that many alternative decomposition routes can be quickly, yet accurately, informed in forthcoming explorations of potential energy surfaces of diverse hemicellulose motifs under pyrolysis conditions.en
dc.format.extent12820en
dc.format.extent12837en
dc.language.isoenen
dc.relation.ispartofseriesPhysical Chemistry Chemical Physics;
dc.rightsYen
dc.subjectbiomass,quantum chemistry,xylose,modellingen
dc.titleHemicellulose pyrolysis: mechanism and kinetics of functionalized xylopyranoseen
dc.typeJournal Articleen
dc.type.supercollectionscholarly_publicationsen
dc.type.supercollectionrefereed_publicationsen
dc.identifier.peoplefinderurlhttp://people.tcd.ie/lupij
dc.identifier.peoplefinderurlhttp://people.tcd.ie/stdooley
dc.identifier.rssinternalid265676
dc.identifier.doidoi.org/10.1039/D3CP06094B
dc.relation.ecprojectidinfo:eu-repo/grantAgreement/EC/FP7/12/RC/2278_2
dc.rights.ecaccessrightsopenAccess
dc.subject.TCDThemeSmart & Sustainable Planeten
dc.subject.TCDTagENERGYen
dc.subject.TCDTagEnergy Materials Sciencesen
dc.subject.TCDTagRenewable Energy Sourcesen
dc.subject.darat_impairmentOtheren
dc.status.accessibleNen
dc.contributor.sponsorScience Foundation Ireland (SFI)en
dc.contributor.sponsorGrantNumber12/RC/2278_2en
dc.contributor.sponsorEuropean Research Council (ERC)en
dc.contributor.sponsorGrantNumber101002649en
dc.contributor.sponsorRyanair Sustainable Aviation Research Centreen
dc.identifier.urihttp://hdl.handle.net/2262/108441


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