Application of the differential evolution for simulation of the linear optical response of photosynthetic pigments

被引:21
作者
Pishchalnikov, Roman [1 ]
机构
[1] Russian Acad Sci, Prokhorov Gen Phys Inst, Vavilov St 38, Moscow 119991, Russia
基金
俄罗斯基础研究基金会;
关键词
Differential evolution; Photosynthesis; Chlorophyll; Bacteriochlorophyll; Absorption; Optimization methods; EXCITATION-ENERGY TRANSFER; GREEN SULFUR BACTERIA; LIGHT-HARVESTING COMPLEX; PHOTOSYSTEM-II; EXCITON DYNAMICS; REACTION CENTERS; MODEL; SPECTROSCOPIES; TRANSITIONS; RESOLUTION;
D O I
10.1016/j.jcp.2018.06.040
中图分类号
TP39 [计算机的应用];
学科分类号
081203 ; 0835 ;
摘要
For many applications the Differential Evolution (DE) algorithm had proved to be a very efficient tool for getting the best solution especially when the problem has hundreds of free parameters to optimize. This study aims to expend the list of DE successful scientific applications and to use the DE method for photosynthetic pigments optical response modeling. Chlorophyll (Chl) and bacteriochlorophyll (BChl) are the main pigment molecules of the photosynthetic light-harvesting complexes. These complexes are responsible for photon absorption and sequential transport of energy to the photosynthetic reaction center where the charge separation occurs. The DE routines were adopted to perform the fitting of Chl and Bchl Qy band absorption and fluorescence spectra measured in dimethyl ether. To simulate these spectra the stochastic Brownian oscillator model with 49 vibronic modes for Chl and 60 modes for BChl has been applied. By using the artificially calculated spectra, 10 strategies were tested with different settings of the scaling factor (F) and crossover parameter (Cr) before to fit the real experimental data. Once the proper strategy and settings, which give the fastest convergence, were found, the set of parameters representing the electron-phonon coupling (Huang-Rhys factors) and the lowest frequency modes were calculated. These parameters can be used for modeling of the light-harvesting complex nonlinear optical response. (C) 2018 Elsevier Inc. All rights reserved.
引用
收藏
页码:603 / 615
页数:13
相关论文
共 52 条
  • [1] How proteins trigger excitation energy transfer in the FMO complex of green sulfur bacteria
    Adolphs, Julia
    Renger, Thomas
    [J]. BIOPHYSICAL JOURNAL, 2006, 91 (08) : 2778 - 2797
  • [2] [Anonymous], 2012, J. Chem. Phys
  • [3] [Anonymous], 2021, MOL MECH PHOTOSYNTHE
  • [4] From structure to dynamics:: Modeling exciton dynamics in the photosynthetic antenna PS1
    Brüggemann, B
    Sznee, K
    Novoderezhkin, V
    van Grondelle, R
    May, V
    [J]. JOURNAL OF PHYSICAL CHEMISTRY B, 2004, 108 (35) : 13536 - 13546
  • [5] Croce R, 2013, PHOTOSYNTH RES, V116, P153, DOI 10.1007/s11120-013-9838-x
  • [6] Electronic Energy Transfer in Condensed Phase Studied by a Polarizable QM/MM Model
    Curutchet, Caries
    Munoz-Losa, Aurora
    Monti, Susanna
    Kongsted, Jacob
    Scholes, Gregory D.
    Mennucci, Benedetta
    [J]. JOURNAL OF CHEMICAL THEORY AND COMPUTATION, 2009, 5 (07) : 1838 - 1848
  • [7] Recent advances in differential evolution - An updated survey
    Das, Swagatam
    Mullick, Sankha Subhra
    Suganthan, P. N.
    [J]. SWARM AND EVOLUTIONARY COMPUTATION, 2016, 27 : 1 - 30
  • [8] Differential Evolution: A Survey of the State-of-the-Art
    Das, Swagatam
    Suganthan, Ponnuthurai Nagaratnam
    [J]. IEEE TRANSACTIONS ON EVOLUTIONARY COMPUTATION, 2011, 15 (01) : 4 - 31
  • [9] X-RAY STRUCTURE-ANALYSIS OF A MEMBRANE-PROTEIN COMPLEX - ELECTRON-DENSITY MAP AT 3A RESOLUTION AND A MODEL OF THE CHROMOPHORES OF THE PHOTOSYNTHETIC REACTION CENTER FROM RHODOPSEUDOMONAS-VIRIDIS
    DEISENHOFER, J
    EPP, O
    MIKI, K
    HUBER, R
    MICHEL, H
    [J]. JOURNAL OF MOLECULAR BIOLOGY, 1984, 180 (02) : 385 - 398
  • [10] Differential evolution for system identification of self-excited vibrations
    Erdbrink, Christiaan D.
    Krzhizhanovskaya, Valeria V.
    [J]. JOURNAL OF COMPUTATIONAL SCIENCE, 2015, 10 : 360 - 369