Pathways of energy transfer in LHCII revealed by room-temperature 2D electronic spectroscopy

We present here the first room-temperature 2D electronic spectroscopy study of energy transfer in the plant light-harvesting complex II, LHCII. Two-dimensional electronic spectroscopy has been used to study energy transfer dynamics in LHCII trimers from the chlorophyll b Q y band to the chlorophyll...

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Veröffentlicht in:Physical chemistry chemical physics : PCCP 2014-01, Vol.16 (23), p.1164-11646
Hauptverfasser: Wells, Kym L, Lambrev, Petar H, Zhang, Zhengyang, Garab, Gyözö, Tan, Howe-Siang
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Sprache:eng
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Zusammenfassung:We present here the first room-temperature 2D electronic spectroscopy study of energy transfer in the plant light-harvesting complex II, LHCII. Two-dimensional electronic spectroscopy has been used to study energy transfer dynamics in LHCII trimers from the chlorophyll b Q y band to the chlorophyll a Q y band. Observing cross-peak regions corresponding to couplings between different excitonic states reveals partially resolved fine structure at the exciton level that cannot be isolated by pump-probe or linear spectroscopy measurements alone. Global analysis of the data has been performed to identify the pathways and time constants of energy transfer. The measured waiting time ( T w ) dependent 2D spectra are found to be composed of 2D decay-associated spectra with three timescales (0.3 ps, 2.3 ps and >20 ps). Direct and multistep cascading pathways from the high-energy chlorophyll b states to the lowest-energy chlorophyll a states have been resolved occurring on time scales of hundreds of femtoseconds to picoseconds. We present here the first room-temperature 2D electronic spectroscopy study of energy transfer in the plant light-harvesting complex II, LHCII.
ISSN:1463-9076
1463-9084
DOI:10.1039/c4cp00876f