A numerically exact path integral treatment of the absorption and emission spectra of open quantum systems is presented that requires only the straightforward solution of a stochastic differential equation. The approach converges rapidly enabling the calculation of spectra of large excitonic systems across the complete range of system parameters and for arbitrary bath spectral densities. With the numerically exact absorption and emission operators, one can also immediately compute energy transfer rates using the multi-chromophoric Förster resonant energy transfer formalism. Benchmark calculations on the emission spectra of two level systems are presented demonstrating the efficacy of the stochastic approach. This is followed by calculations...
The transfer tensor method [1] is a compact and intuitive tool for the analysis and simulation of ge...
A general approach to determine orientation and distance-dependent effective intermolecular exciton ...
In this thesis, we propose a general and effective approach to compute vibrationally-resolved electr...
We develop a hybrid cumulant expansion method to account for the system-bath entanglement in the emi...
We study the Förster resonant energy transfer rate, absorption and emission spectra in multichromoph...
We compare theoretical methods for calculating excitation energy transfer rates in multichromophoric...
We develop a model that establishes a quantitative link between the physical properties of molecular...
The accuracy of approximate methods for calculating linear optical spectra depends on many variables...
: Electronic couplings are key to understanding exciton delocalization and transport in natural and ...
The accurate simulation of excitonic energy transfer in molecular complexes with coupled electronic ...
Computation of nonlinear optical response functions allows for an in-depth connection between theory...
In large photosynthetic chromophore-protein complexes not all chromophores are coupled strongly, and...
Multichromophoric biosystems represent a broad family with very diverse members, ranging from light-...
Photosynthesis involves the absorption of photons by light-harvesting pigments and the subsequent tr...
Resonance energy transfer involving two identical donors and one acceptor is modelled by quantum ele...
The transfer tensor method [1] is a compact and intuitive tool for the analysis and simulation of ge...
A general approach to determine orientation and distance-dependent effective intermolecular exciton ...
In this thesis, we propose a general and effective approach to compute vibrationally-resolved electr...
We develop a hybrid cumulant expansion method to account for the system-bath entanglement in the emi...
We study the Förster resonant energy transfer rate, absorption and emission spectra in multichromoph...
We compare theoretical methods for calculating excitation energy transfer rates in multichromophoric...
We develop a model that establishes a quantitative link between the physical properties of molecular...
The accuracy of approximate methods for calculating linear optical spectra depends on many variables...
: Electronic couplings are key to understanding exciton delocalization and transport in natural and ...
The accurate simulation of excitonic energy transfer in molecular complexes with coupled electronic ...
Computation of nonlinear optical response functions allows for an in-depth connection between theory...
In large photosynthetic chromophore-protein complexes not all chromophores are coupled strongly, and...
Multichromophoric biosystems represent a broad family with very diverse members, ranging from light-...
Photosynthesis involves the absorption of photons by light-harvesting pigments and the subsequent tr...
Resonance energy transfer involving two identical donors and one acceptor is modelled by quantum ele...
The transfer tensor method [1] is a compact and intuitive tool for the analysis and simulation of ge...
A general approach to determine orientation and distance-dependent effective intermolecular exciton ...
In this thesis, we propose a general and effective approach to compute vibrationally-resolved electr...