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Band Structure and Local Dynamics of Excitons in Bacterial Light-harvesting Complexes Revealed by Spectrally Selective Spectroscopy

机译:光谱选择性光谱揭示细菌捕光复合物中激子的能带结构和局部动力学

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Hole-burned absorption and line-narrowed fluorescence spectra are studied at 5 K in wild type and mutant LH1 and LH2 antenna preparations from the photosynthetic purple bacterium Rhodobacter sphaeroides. Evidence was found in all samples, even in intact membranes, of the presence of a broad distribution of bacteriochlorophyll species that are unable to communicate energy between each other and to the exciton states of functional antenna complexes. The distribution maximum of these localized species determined by zero phonon hole action spectroscopy is at 783.5 nm in purified LH1 complexes and at 786.8 nm in B850-only mutant LH2 complexes. A well-resolved peak at 807 nm in LH1 complexes is assigned to the exciton band structure of functional core antenna complexes. Similar structure in LH2 complexes overlaps with the distribution of localized species. Off-diagonal (structural) disorder may be responsible for this exciton band structure. Our data also imply that pair-wise inter-chlorophyll couplings determine the resonance fluorescence lineshape of excitonic polarons.
机译:研究了来自光合作用紫色细菌球形红球菌的野生型和突变LH1和LH2天线制剂在5 K下的空穴燃烧吸收和线窄荧光光谱。在所有样品中,甚至在完整的膜中,都发现存在着广泛分布的细菌叶绿素,这些细菌无法相互之间传递能量,也无法传递给功能性天线配合物的激子态。通过零声子空穴作用光谱法确定的这些局部物种的分布最大值在纯化的LH1配合物中为783.5 nm,在仅B850突变LH2配合物中为786.8 nm。 LH1配合物中807 nm处一个良好分辨的峰被分配给功能性核心天线配合物的激子能带结构。 LH2配合物中的相似结构与局部物种的分布重叠。非对角线(结构)障碍可能是这种激子带结构的原因。我们的数据还暗示成对的叶绿素间偶联决定了激子极化子的共振荧光线形。

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