Higher Order Vibronic Sidebands of Chlorophyll a and Bacteriochlorophyll a for Enhanced Excitation Energy Transfer and Light Harvesting

被引:9
|
作者
Ratsep, Margus [1 ]
Linnanto, Juha Matti [1 ]
Freiberg, Arvi [1 ,2 ,3 ]
机构
[1] Univ Tartu, Inst Phys, W Ostwald St 1, EE-50411 Tartu, Estonia
[2] Univ Tartu, Inst Mol & Cell Biol, Riia 23, EE-51010 Tartu, Estonia
[3] Estonian Acad Sci, Kohtu 6, EE-10130 Tallinn, Estonia
关键词
ELECTRON-PHONON; RHODOPSEUDOMONAS-ACIDOPHILA; REACTION CENTERS; LH2; COMPLEXES; SPECTRA; PROTEIN; STATE;
D O I
10.1021/acs.jpcb.9b06843
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
Optical absorption and fluorescence spectra of molecules in condensed phases often show extensive sidebands. Originating from electron-vibrational and electron-phonon couplings, these spectral tails bear important information on the dynamics of electronic states and processes the molecules are involved in. The vibronic sidebands observed in conjugate Q(y) absorption and fluorescence spectra of chlorophyll a and bacteriochlorophyll a are relatively weak, characterized by the total Huang-Rhys factor which is less than one. Therefore, it is widely considered that only fundamental intramolecular modes are responsible for their formation. Here, we provide evidence for extra-long and structured fluorescence tails of chlorophyll a and bacteriochlorophyll a as far as 4000 cm(-1) from respective spectral origins, far beyond the frequency range of fundamental modes. According to quantum chemical simulations, these sidebands extending to similar to 960 nm in chlorophyll a and similar to 1140 nm in bacteriochlorophyll a into the infrared part of the optical spectrum are mainly contributed to by vibrational overtones of the fundamental modes. Because energy transfer and relaxation processes generally depend on vibronic overlap integrals, these findings potentially contribute to better understanding of many vital photo-induced phenomena, including photosynthetic light harvesting.
引用
收藏
页码:7149 / 7156
页数:8
相关论文
共 50 条
  • [31] Insertion of chlorophyll a derivatives into the binding sites of B800 bacteriochlorophyll a in light-harvesting complex 2 from the purple photosynthetic bacterium Rhodoblastus acidophilus
    Saga, Yoshitaka
    Amari, Kenta
    Miyagi, Kanji
    JOURNAL OF PHOTOCHEMISTRY AND PHOTOBIOLOGY A-CHEMISTRY, 2018, 353 : 591 - 596
  • [32] Chlorophyll-carotenoid excitation energy transfer and charge transfer in Nannochloropsis oceanica for the regulation of photosynthesis
    Park, Soomin
    Steen, Collin J.
    Lyska, Dagmar
    Fischer, Alexandra L.
    Endelman, Benjamin
    Iwai, Masakazu
    Niyogi, Krishna K.
    Fleming, Graham R.
    PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2019, 116 (09) : 3385 - 3390
  • [33] Energy Transfer between Surface-immobilized Light-Harvesting Chlorophyll a/b Complex (LHCH) Studied by Surface Plasmon Field-Enhanced Fluorescence Spectroscopy (SPFS)
    Lauterbach, Rolf
    Liu, Jing
    Knoll, Wolfgang
    Paulsen, Harald
    LANGMUIR, 2010, 26 (22) : 17315 - 17321
  • [34] Solar light harvesting by energy transfer: from ecology to coherence
    Scholes, Gregory D.
    Mirkovic, Tihana
    Turner, Daniel B.
    Fassioli, Francesca
    Buchleitner, Andreas
    ENERGY & ENVIRONMENTAL SCIENCE, 2012, 5 (11) : 9374 - 9393
  • [35] Quantum Mechanical Calculations of Xanthophyll-Chlorophyll Electronic Coupling in the Light-Harvesting Antenna of Photosystem II of Higher Plants
    Duffy, C. D. P.
    Valkunas, L.
    Ruban, A. V.
    JOURNAL OF PHYSICAL CHEMISTRY B, 2013, 117 (25) : 7605 - 7614
  • [36] Flow of Excitation Energy in the Cryptophyte Light-Harvesting Antenna Phycocyanin 645
    Marin, Alessandro
    Doust, Alexander B.
    Scholes, Gregory D.
    Wilk, Krystyna E.
    Curmi, Paul M. G.
    van Stokkum, Ivo H. M.
    van Grondelle, Rienk
    BIOPHYSICAL JOURNAL, 2011, 101 (04) : 1004 - 1013
  • [37] Intramolecular Excitation Energy Transfer from Visible-light Absorbing Chlorophyll Derivatives to a Near-infrared-light Emitting Boron Dipyrromethene Moiety
    Kataoka, Yumiko
    Shibata, Yutaka
    Tamiaki, Hitoshi
    CHEMISTRY LETTERS, 2010, 39 (09) : 953 - 955
  • [38] Carotenoid dark state to chlorophyll energy transfer in isolated light-harvesting complexes CP24 and CP29
    Gacek, Daniel A.
    Holleboom, Christoph-Peter
    Liao, Pen-Nan
    Negretti, Marco
    Croce, Roberta
    Walla, Peter Jomo
    PHOTOSYNTHESIS RESEARCH, 2020, 143 (01) : 19 - 30
  • [39] An efficient method to calculate excitation energy transfer in light-harvesting systems: application to the Fenna-Matthews-Olson complex
    Ritschel, Gerhard
    Roden, Jan
    Strunz, Walter T.
    Eisfeld, Alexander
    NEW JOURNAL OF PHYSICS, 2011, 13
  • [40] Chlorophyll-Carotenoid Excitation Energy Transfer in High-Light-Exposed Thylakoid Membranes Investigated by Snapshot Transient Absorption Spectroscopy
    Park, Soomin
    Fischer, Alexandra L.
    Steen, Collin J.
    Iwai, Masakazu
    Morris, Jonathan M.
    Walla, Peter Jomo
    Niyogi, Krishna K.
    Fleming, Graham R.
    JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2018, 140 (38) : 11965 - 11973