Effect of Force and Confinement on Chemical Reaction Kinetics

dc.contributor.advisorWilfred T Tysoe
dc.contributor.committeememberPeter V Kotvis
dc.contributor.committeememberJorg C Woehl
dc.contributor.committeememberArsenio A Pacheco
dc.contributor.committeememberAlan W Schwabacher
dc.creatorBoscoboinik, Alejandro
dc.date.accessioned2025-01-16T18:27:46Z
dc.date.available2025-01-16T18:27:46Z
dc.date.issued2020-08-01
dc.description.abstractThis work studies model systems that are relevant to understanding the fundamentals of surface chemical processes. A Cu(100) single crystal surface modified by methyl thiolate species, formed from the adsorption of dimethyl disulfide, is used for modeling the effect of an external force in a chemical reaction. Furthermore, 2D-Zeolite is synthesized, characterized and postulated as a model system for studying chemistry in confined space. Furfural adsorption on Pd(111) is studied under different experimental conditions by means of infrared reflection-absorption spectroscopy. Furfural uptake experiments from sub-monolayer to multilayer coverages and sequential heating lead to an analysis of conformational changes and tilting angles as a function of coverage and temperature. Finally, surface self-assembly processes are explored by means of Monte Carlo simulations that produce results with potential use as a general computational model for studying the interconnection of distributed particles on surfaces.
dc.identifier.urihttp://digital.library.wisc.edu/1793/86893
dc.relation.replaceshttps://dc.uwm.edu/etd/2463
dc.subjectConfinement
dc.subjectMechanochemistry
dc.subjectSelf Assembly
dc.subjectSurface Science
dc.subjectTribology
dc.subjectUltra High Vacuum
dc.titleEffect of Force and Confinement on Chemical Reaction Kinetics
dc.typedissertation
thesis.degree.disciplineChemistry
thesis.degree.grantorUniversity of Wisconsin-Milwaukee
thesis.degree.nameDoctor of Philosophy

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