Developing quantum field theoretical computational methods for quantum dynamics and statistical mechanics simulations in quantum chemistry

dc.contributor.authorBao, Songhao
dc.date.accessioned2024-09-24T20:23:44Z
dc.date.available2024-09-24T20:23:44Z
dc.date.issued2024-09-24
dc.date.submitted2024-09-11
dc.description.abstractThis thesis presents the development of two approaches—thermal normal-ordered exponential (TNOE) and thermofield coupled cluster (TFCC)—for simulating quantum dynamics and statistical mechanics in quantum chemistry, grounded in quantum field theoretical formulations. The TNOE approach employs a normal-ordered exponential ansatz to parameterize the thermal density operator, allowing the calculation of thermal properties through cluster expansions and imaginary time integration of equations of motion (EOMs). The TFCC approach introduces a fictitious space and Bogoliubov transformation to express the thermal density operator as a "pure state," similarly enabling thermal property calculations through imaginary time integration. The two approaches are verified to be mathematically equivalent and they are applied to two specific problems: the electronic structure problem and the vibronic coupling problem. The application on the thermal electronic structure problems encounters challenges due to N-representability issues. Modifications to the TNOE approach lead to the vibrational electronic coupled cluster (VECC) method, effectively simulating the quantum dynamics of vibronic coupling systems with impressive efficiency and accuracy. The statistical mechanics formulation of the VECC method, vibrational electronicthermofield coupled cluster (VE-TFCC), utilizes imaginary time integration to successfully calculate thermal properties of vibronic coupling systems with enhanced efficiency and accuracy compared to conventional methods. Overall, the VECC and VE-TFCC approaches, in combination with vibronic models, provides a robust framework for simulating quantum dynamics and thermal equilibrium properties of vibronic coupling systems.en
dc.identifier.urihttps://hdl.handle.net/10012/21101
dc.language.isoen
dc.pendingfalse
dc.publisherUniversity of Waterlooen
dc.titleDeveloping quantum field theoretical computational methods for quantum dynamics and statistical mechanics simulations in quantum chemistry
dc.typeDoctoral Thesis
uws-etd.degreeDoctor of Philosophy
uws-etd.degree.departmentChemistry
uws-etd.degree.disciplineChemistry
uws-etd.degree.grantorUniversity of Waterlooen
uws-etd.embargo.terms0
uws.contributor.advisorNooijen, Marcel
uws.contributor.affiliation1Faculty of Science
uws.peerReviewStatusUnrevieweden
uws.published.cityWaterlooen
uws.published.countryCanadaen
uws.published.provinceOntarioen
uws.scholarLevelGraduateen
uws.typeOfResourceTexten

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