Acta Photonica Sinica, Volume. 44, Issue 1, 117002(2015)
Redundancy of Fenna-Matthews-Olson for Energy Harvesting
[1] [1] CHENG Yuan-chun, FLEMING R. Dynamics of light harvesting in photosynthesis[J]. Annual Review of Physical Chemistry, 2009, 60(241): 241-62.
[2] [2] SENSION R. Quantum path to photosynthesis[J]. Nature, 2007, 446(12): 740.
[3] [3] JANG S, NEWTON M, SILBEY J. Multichromophoric frster resonance energy transfer from B800 to B850 in the light harvesting complex2: evidence for subtle energetic optimization by purple bacteria[J]. The Journal of Physical Chemistry B, 2007, 111(24): 6807-6814.
[4] [4] ENGEL S, CALHOUN R, READ L, et al. Evidence for wavelike energy transfer through quantum coherence in photosynthetic systems[J]. Nature, 2007, 446 (7137): 782-786.
[5] [5] BRIXNER T, STENGER J, VASWAN M, et al. Two-dimensional spectroscopy of electronic couplings in photosynthesis[J]. Nature, 2005, 434(7033): 625-628.
[6] [6] PANITCHAYANGKOON G, HAYES D, FRANSTED K, et al. Long-lived quantum coherence in photosynthetic complexes at physiological temperature[J]. Proceedings of the National Academy of Sciences, 2010, 107(29): 12766-12770.
[7] [7] ISHIZAKI A, FLEMING R. Theoretical examination of quantum coherence in a photosynthetic system at physiological temperature[J]. Proceedings of the National Academy of Sciences, 2009, 106(41): 17255-17260.
[8] [8] CHEN Li-ping, ZHENG Ren-hui, YAN Yi-jing, et al. Simulation of the two-dimensional electronic spectra of the Fenna-Matthews-Olson complex using the hierarchical equations of motion method[J]. The Journal of Chemical Physics, 2011, 134(19): 194508.
[9] [9] HEIN B, KREISBECK C, KRAMER T, et al. Modelling of oscillations in two-dimensional echo-spectra of the Fenna-Matthews-Olson complex[J]. New Journal of Physics, 2012, 14(2): 023018.
[10] [10] SKOCHDOPOLE N, MAZZIOTTI A. Functional subsystems and quantum redundancy in photosynthetic light harvesting[J]. The Journal of Physical Chemistry Letters, 2011, 2(23): 2989-2993.
[11] [11] ALICKI R, MIKLASZEWSKI W. A resonance mechanism of efficient energy transfer mediated by Fenna-Matthews-Olson complex[J]. The Journal of Chemical Physics, 2012, 136(13): 134103.
[12] [12] SHARP Z, EGOROVA D, DOMCKE W. Efficient and accurate simulations of two-dimensional electronic photon-echo signals: Illustration for a simple model of the Fenna-Matthews-Olson complex[J]. The Journal of Chemical Physics, 2010, 132(1): 014501.
[13] [13] TANIMURA Y, KUBO R. Time evolution of a quantum system in contact with a nearly Gaussian-Markoffian noise bath[J]. Journal Physical Society of Japan, 1989, 58(1): 101-114.
[14] [14] ISHIZAKI A, TANIMURA Y. Quantum dynamics of system strongly coupled to low-temperature colored noise bath: reduced hierarchy equations approach[J]. Journal Physical Society of Japan, 2005, 74(12): 3131.
[15] [15] ISHIZAKI A., TANIMURA Y. Nonperturbative non-Markovian quantum master equation: validity and limitation to calculate nonlinear response functions[J]. Chemical Physics, 2008, 347(1): 185-193.
[16] [16] CHEN Li-ping, ZHENG Ren-hui, SHI Qiang, et al. Two-dimensional electronic spectra from the hierarchical equations of motion method: Application to model dimmers[J]. The Journal of Chemical Physics, 2010, 132(2): 024505.
[17] [17] STRUMPFER J, SCHULTEN K. Open quantum dynamics calculations with the hierarchy equations of motion on parallel computers[J]. Journal of Chemical Theory and Computation, 2012, 8(8): 2808-2816.
[18] [18] COLLINI E, WONG C, WILK E, et al. Coherently wired light-harvesting in photosynthetic marine algae at ambient temperature[J]. Nature, 2010, 463(7281): 644-647.
[19] [19] WONG Y, ALVEY M, TURNER B, et al. Electronic coherence lineshapes reveal hidden excitonic correlations in photosynthetic light harvesting[J]. Nature Chemistry, 2012, 4(5): 396-404.
[20] [20] CHO M, VASWANI M, BRIXNER T, et al. Exciton analysis in 2D electronic spectroscopy[J]. The Journal of Physical Chemistry B, 2005, 109(21): 10542-10556.
[21] [21] SCHIJVEN P, MUEHLBACHER L, MUELKEN O. Energy transfer properties and absorption spectra of the FMO complex: from exact PIMC calculations to TCL master equations[DB/OL]. (2013-01-09)[2014-06-11].http: //arxiv.org/abs/1301.0839.
[22] [22] STRUMPFER J, SCHULTEN K. Open quantum dynamics calculations with the hierarchy equations of motion on parallel computers[J]. Journal of Chemical Theory and Computation 2012, 8(8): 2808-2816.
[23] [23] ZHANG Pan-pan, LIU Zhi-qiang, LIANG Xian-ting. Two-dimensional electronic spectra investigated using hierarchical equation of motion and cumulant expansion[J]. Journal of Modern Optics, 2013, 60(4): 301-308.
[24] [24] SHARP Z, EGOROVA D, DOMCKE W. Efficient and accurate simulations of two-dimensional electronic photon-echo signals: Illustration for a simple model of the Fenna-Matthews-Olson complex[J]. The Journal of Chemical Physics 2010, 132(1): 014501.
[25] [25] CARAM R, ZHENG H, DAHLBERG D, et al. Persistent interexcitonic quantum coherence in CdSe quantum dots[J]. The Journal of Physical Chemistry Letters, 2013, 5(1): 196-204.
[26] [26] DAHLBERG D, FIDLER F, CARAM R, et al. Energy transfer observed in live cells using two-dimensional electronic spectroscopy[J]. The Journal of Physical Chemistry Letters, 2013, 4(21): 3636-3640.
[27] [27] FIDLER F, SINGH P, LONG D, et al. Probing energy transfer events in the light harvesting complex 2 (LH2) of Rhodobacter sphaeroides with two-dimensional spectroscopy[J]. The Journal of Chemical Physics, 2013, 139(15): 155-101.
Get Citation
Copy Citation Text
LENG Xuan, LIANG Xian-ting. Redundancy of Fenna-Matthews-Olson for Energy Harvesting[J]. Acta Photonica Sinica, 2015, 44(1): 117002
Category:
Received: Jun. 11, 2014
Accepted: --
Published Online: Jan. 26, 2015
The Author Email: