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Quantum Dynamics in Condensed Phase: Charge Transfer in Biological Systems and Organic Photovoltaics

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dc.contributor.author NSHUTI, Jean Paul
dc.date.accessioned 2026-04-15T12:25:06Z
dc.date.available 2026-04-15T12:25:06Z
dc.date.issued 2024-04
dc.identifier.uri https://dr.ur.ac.rw/handle/123456789/2822
dc.description Master's Dissertation en_US
dc.description.abstract The simulation of nonadiabatic dynamics in the condensed-phase system provides a better understanding of photoinduced electron transfer within biological systems. The Caretenoid(C) Porpyrin(P) Fullerene(C60) explicitly dissolved in Tetrahydrofuran is used as a prototypical organic photovoltaics triad molecule due to its properties of mimicking photosynthetic process. The simulations employ the Multi-state Harmonic model (MSH) Hamiltonian developed in ref [1] which provides the strategy of describing real Hamiltonian for systems of multiple electronic states. In this work, we simulate the nonadiabatic photoinduced electron transfer dynamics using a full quantum dynamics approach of MCTDH (Multi-configuration Time-Dependent Hartree) and its extension of ML-MCTDH and compare it with semiclassical models. The three-state case was found out that can reproduce semiclassical results but the four-state case failed to reproduce the semiclassical results. en_US
dc.language.iso en en_US
dc.subject Quantum dynamics en_US
dc.subject Biological systems en_US
dc.subject Organic Photovoltaics en_US
dc.title Quantum Dynamics in Condensed Phase: Charge Transfer in Biological Systems and Organic Photovoltaics en_US
dc.type Dissertation en_US


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