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Mapping the ultrafast flow of harvested solar energy in living photosynthetic cells

Authors: Dahlberg, P.D.; Ting, P.-C.; orcid Massey, S.C.;
Massey, S.C.
ORCID
Harvested from ORCID Public Data File

Massey, S.C. in OpenAIRE
orcid Allodi, M.A.;
Allodi, M.A.
ORCID
Harvested from ORCID Public Data File

Allodi, M.A. in OpenAIRE
Martin, E.C.; orcid bw Hunter, C.N.;
Hunter, C.N.
ORCID
Derived by OpenAIRE algorithms or harvested from 3rd party repositories

Hunter, C.N. in OpenAIRE
orcid Engel, G.S.;
Engel, G.S.
ORCID
Harvested from ORCID Public Data File

Engel, G.S. in OpenAIRE

Mapping the ultrafast flow of harvested solar energy in living photosynthetic cells

Abstract

AbstractPhotosynthesis transfers energy efficiently through a series of antenna complexes to the reaction center where charge separation occurs. Energy transfer in vivo is primarily monitored by measuring fluorescence signals from the small fraction of excitations that fail to result in charge separation. Here, we use two-dimensional electronic spectroscopy to follow the entire energy transfer process in a thriving culture of the purple bacteria,Rhodobacter sphaeroides. By removing contributions from scattered light, we extract the dynamics of energy transfer through the dense network of antenna complexes and into the reaction center. Simulations demonstrate that these dynamics constrain the membrane organization into small pools of core antenna complexes that rapidly trap energy absorbed by surrounding peripheral antenna complexes. The rapid trapping and limited back transfer of these excitations lead to transfer efficiencies of 83% and a small functional light-harvesting unit.

Country
United Kingdom
Keywords

Light, Science, Q, Photosynthetic Reaction Center Complex Proteins, FOS: Physical sciences, Rhodobacter sphaeroides, Fluorescence, Kinetics, Bacterial Proteins, Energy Transfer, Spectrophotometry, Biological Physics (physics.bio-ph), Proteobacteria, Solar Energy, Physics - Biological Physics, Photosynthesis

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