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Communication: Broad manifold of excitonic states in light-harvesting complex 1 promotes efficient unidirectional energy transfer in vivo

机译:交流:集光复合体1中激子态的广泛流形促进体内有效的单向能量传递

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摘要

In photosynthetic organisms, the pigment-protein complexes that comprise the light-harvesting antenna exhibit complex electronic structures and ultrafast dynamics due to the coupling among the chromophores. Here, we present absorptive two-dimensional (2D) electronic spectra from living cultures of the purple bacterium, Rhodobacter sphaeroides, acquired using gradient assisted photon echo spectroscopy. Diagonal slices through the 2D lineshape of the LH1 stimulated emission/ground state bleach feature reveal a resolvable higher energy population within the B875 manifold. The waiting time evolution of diagonal, horizontal, and vertical slices through the 2D lineshape shows a sub-100 fs intra-complex relaxation as this higher energy population red shifts. The absorption (855 nm) of this higher lying sub-population of B875 before it has red shifted optimizes spectral overlap between the LH1 B875 band and the B850 band of LH2. Access to an energetically broad distribution of excitonic states within B875 offers a mechanism for efficient energy transfer from LH2 to LH1 during photosynthesis while limiting back transfer. Two-dimensional lineshapes reveal a rapid decay in the ground-state bleach/stimulated emission of B875. This signal, identified as a decrease in the dipole strength of a strong transition in LH1 on the red side of the B875 band, is assigned to the rapid localization of an initially delocalized exciton state, a dephasing process that frustrates back transfer from LH1 to LH2.
机译:在光合生物中,由于发色团之间的耦合,构成光收集天线的色素-蛋白质复合物表现出复杂的电子结构和超快动力学。在这里,我们介绍了使用梯度辅助光子回波光谱技术从紫色细菌球形球形红细菌的活培养物中获得的二维(2D)吸收电子光谱。通过LH1激发的发射/基态漂白特征的2D线形的对角切片显示B875歧管内可解决的较高能量总体。穿过2D线形的对角线,水平和垂直切片的等待时间演变显示,随着此较高的能量总体红移,sub-comf复杂度低于100 fs。 B875的这个较高子种群在发生红移之前的吸收(855 nm)优化了LH1 B875波段与LH2的B850波段之间的光谱重叠。在B875内获得激子态的能量广泛分布提供了一种机制,可以在光合作用期间从LH2到LH1进行有效的能量转移,同时限制反向转移。二维线形表明B875的基态漂白/受激发射迅速衰减。该信号被识别为B875波段红色侧LH1中强跃迁的偶极强度降低,该信号被分配给初始离域激子状态的快速定位,该相移过程使从LH1到LH2的反向传输受挫。

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