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Ultrafast Multidimensional Spectroscopy: Principles and Applications to Photosynthetic Systems

机译:超快速多维光谱:光合作用系统的原理和应用

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We present the utility of 2-D electronic spectroscopy for the investigation of energy transfer dynamics in photosynthetic light-harvesting systems. Elucidating ultrafast energy transfer within photosynthetic systems is difficult due to the large number of molecules and complex environments involved in the process. In many spectroscopic methods, these systems appear as overlapping peaks with broad linewidths, obscuring the details of the dynamics. 2-D spectroscopy is a nonlinear, ultrafast method that yields a correlation map between excitation and emission energies, and can track incoherent and coherent energy transfer processes with femtosecond resolution. A 2-D spectrum can provide important insight into the structure and the mechanisms behind the excited state dynamics. We review the principles behind 2-D spectroscopy and describe the content of a 2-D electronic spectrum. Several recent applications of this technique to the major light-harvesting complex of Photosystem II are presented, including monitoring the time scales of energy transfer processes, investigation of the excited state energies, and determination of the relative orientations of the excited state transition dipole moments.
机译:我们目前在研究二维光电子捕光系统中的能量转移动力学的二维电子光谱学的实用程序。由于该过程涉及大量的分子和复杂的环境,因此难以阐明光合作用系统内的超快能量传递。在许多光谱方法中,这些系统显示为具有宽线宽的重叠峰,从而掩盖了动力学的细节。二维光谱法是一种非线性的,超快的方法,可以在激发和发射能量之间产生关联图,并且可以飞秒分辨率跟踪非相干和相干能量传输过程。二维光谱可以为激发态动力学背后的结构和机理提供重要的见识。我们回顾了二维光谱学的原理,并描述了二维电子光谱的内容。介绍了该技术在Photosystem II的主要光收集复合体中的几种最新应用,包括监视能量转移过程的时间尺度,研究激发态能量以及确定激发态跃迁偶极矩的相对方向。

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