Energy transfer in the photosynthetic Fenna–Matthews–Olson (FMO) complex of green sulfur bacteria is studied numerically taking all three subunits (monomers) of the FMO trimer and the recently found eighth bacteriochlorophyll (BChl) molecule into account. The coupling to the non-Markovian environment is treated with a master equation derived from non-Markovian quantum state diffusion. When the excited-state dynamics is initialized at site eight, which is believed to play an important role in receiving excitation from the main light harvesting antenna, we see a slow exponential-like decay of the excitation. This is in contrast to the oscillations and a relatively fast transfer that usually occurs when initialization at sites 1 or 6 is consid...
The Fenna-Mathews-Olson (FMO) complex present in green sulphur bacteria are known to mediate the tra...
All life on Earth relies on the ability of photosynthetic organisms to efficiently harvest and trap ...
Pigment-protein complexes (PPCs) play a central role in facilitating excitation energy transfer (EET...
Energy transfer in the photosynthetic Fenna-Matthews-Olson (FMO) complex of green sulfur bacteria is...
A remarkable amount of theoretical research has been carried out to elucidate the physical origins o...
The Fenna-Matthews-Olson (FMO) photosynthetic complex found in green sulfur bacteria has over the la...
The experimental observation of long-lived quantum coherences in the Fenna-Matthews-Olson (FMO) ligh...
We present progress toward a first-principles parametrization of the Hamiltonian of the Fenna–Matthe...
Light absorbed by light-harvesting antennae is transferred to the reaction center (RC). The excitati...
AbstractQuantum coherence improves the quantum efficiency of excitonic energy transport within the F...
The idea that excitonic (electronic) coherences are of fundamental importance to natural photosynthe...
We present a detailed theoretical study of the transfer of electronic excitation energy through the ...
We present a theoretical study of excitation dynamics in the chlorosome antenna complex of green pho...
AbstractA remarkable amount of theoretical research has been carried out to elucidate the physical o...
Phototrophic organisms such as plants, photosynthetic bacteria, and algae use microscopic complexes ...
The Fenna-Mathews-Olson (FMO) complex present in green sulphur bacteria are known to mediate the tra...
All life on Earth relies on the ability of photosynthetic organisms to efficiently harvest and trap ...
Pigment-protein complexes (PPCs) play a central role in facilitating excitation energy transfer (EET...
Energy transfer in the photosynthetic Fenna-Matthews-Olson (FMO) complex of green sulfur bacteria is...
A remarkable amount of theoretical research has been carried out to elucidate the physical origins o...
The Fenna-Matthews-Olson (FMO) photosynthetic complex found in green sulfur bacteria has over the la...
The experimental observation of long-lived quantum coherences in the Fenna-Matthews-Olson (FMO) ligh...
We present progress toward a first-principles parametrization of the Hamiltonian of the Fenna–Matthe...
Light absorbed by light-harvesting antennae is transferred to the reaction center (RC). The excitati...
AbstractQuantum coherence improves the quantum efficiency of excitonic energy transport within the F...
The idea that excitonic (electronic) coherences are of fundamental importance to natural photosynthe...
We present a detailed theoretical study of the transfer of electronic excitation energy through the ...
We present a theoretical study of excitation dynamics in the chlorosome antenna complex of green pho...
AbstractA remarkable amount of theoretical research has been carried out to elucidate the physical o...
Phototrophic organisms such as plants, photosynthetic bacteria, and algae use microscopic complexes ...
The Fenna-Mathews-Olson (FMO) complex present in green sulphur bacteria are known to mediate the tra...
All life on Earth relies on the ability of photosynthetic organisms to efficiently harvest and trap ...
Pigment-protein complexes (PPCs) play a central role in facilitating excitation energy transfer (EET...