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Excitation energy transfer in photosynthetic protein-pigment complexes.

机译:光合蛋白-色素复合物中的激发能转移。

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摘要

Quantum biology is a relatively new research area which investigates the rules that quantum mechanics plays in biology. One of the most intriguing systems in this field is the coherent excitation energy transport (EET) in photosynthesis. In this document I will discuss the theories that are suitable for describing the photosynthetic EET process and the corresponding numerical results on several photosynthetic protein-pigment complexes (PPCs).;In some photosynthetic EET processes, because of the electronic coupling between the chromophores within the system is about the same order of magnitude as system-bath coupling (electron-phonon coupling), a non-perturbative method called hierarchy equation of motion (HEOM) is applied to study the EET dynamics. The first part of this thesis includes brief introduction and derivation to the HEOM approach.;The second part of this thesis the HEOM method will be applied to investigate the EET process within the B850 ring of the light harvesting complex 2 (LH2) from purple bacteria, Rhodopseudomonas acidophila. The dynamics of the exciton population and coherence will be analyzed under different initial excitation configurations and temperatures.;Finally, how HEOM can be implemented to simulate the two-dimensional electronic spectra of photosynthetic PPCs will be discussed. Two-dimensional electronic spectroscopy is a crucial experimental technique to probe EET dynamics in multi-chromophoric systems. The system we are interested in is the 7-chromophore Fenna-Matthews-Olson (FMO) complex from green sulfur bacteria, Prosthecochloris aestuarii. Recent crystallographic studies report the existence of an additional (eighth) chromophore in some of the FMO monomers. By applying HEOM we are able to calculate the two-dimensional electronic spectra of the 7-site and 8-site FMO complexes and investigate the functionality of the eighth chromophore.
机译:量子生物学是一个相对较新的研究领域,它研究量子力学在生物学中的作用。该领域最引人入胜的系统之一是光合作用中的相干激发能传输(EET)。在本文中,我将讨论适用于描述光合作用EET过程的理论以及几种光合作用蛋白-色素复合物(PPC)的相应数值结果。;在某些光合作用EET过程中,由于内部发色团之间的电子耦合系统与系统-浴耦合(电子-声子耦合)的数量级大致相同,因此采用一种称为运动层次方程(HEOM)的非摄动方法来研究EET动力学。本文的第一部分包括对HEOM方法的简要介绍和推导。本论文的第二部分将用于研究紫色细菌在光收集复合物2(LH2)的B850环内的EET过程。 ,嗜酸红假单胞菌。将在不同的初始激发构型和温度下分析激子种群的动态和相干性。最后,将讨论如何利用HEOM模拟光合PPC的二维电子光谱。二维电子光谱学是探测多发色体系中EET动力学的一项关键实验技术。我们感兴趣的系统是来自绿色硫细菌Prosthecochloris aestuarii的7色团Fenna-Matthews-Olson(FMO)复合物。最近的晶体学研究报道,某些FMO单体中还存在另外的(第八个)生色团。通过应用HEOM,我们能够计算7位和8位FMO配合物的二维电子光谱,并研究第八种发色团的功能。

著录项

  • 作者

    Yeh, Shu-Hao.;

  • 作者单位

    Purdue University.;

  • 授予单位 Purdue University.;
  • 学科 Physical chemistry.;Quantum physics.
  • 学位 Ph.D.
  • 年度 2015
  • 页码 123 p.
  • 总页数 123
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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