Theory of excitation energy transfer: from structure to function
Author:
Publisher
Springer Science and Business Media LLC
Subject
Cell Biology,Plant Science,Biochemistry,General Medicine
Link
http://link.springer.com/content/pdf/10.1007/s11120-009-9472-9.pdf
Reference78 articles.
1. Abramavicius D, Voronine DV, Mukamel S (2008a) Double-quantum resonances and exciton-scattering in coherent 2D spectroscopy of photosynthetic complexes. Proc Natl Acad Sci USA 105:8525–8530
2. Abramavicius D, Voronine DV, Mukamel S (2008b) Unravelling coherent dynamics and energy dissipation in photosynthetic complexes by 2D spectroscopy. Biophys J 94:3613–3619
3. Adolphs J, Renger T (2006) How proteins trigger excitation energy transfer in the FMO complex of green sulfur bacteria. Biophys J 91:2778–2797
4. Adolphs J, Müh F, Madjet ME, Renger T (2008) Calculation of pigment transition energies in the FMO protein: from simplicity to complexity and back. Photosynth Res 95:197–209
5. Brüggemann B, Sznee K, Novoderezhkin V, van Grondelle R, May V (2004) Modeling exciton dynamics in the photosynthetic antenna PS1. J Phys Chem B 108:13536–13546
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