Chemical Physics, Lund University, P.O. Box 124, SE-22100 Lund, Sweden.
Department of Chemistry and Molecular Biology, University of Gothenburg, Box 462, SE-40530 Gothenburg, Sweden.
J Chem Phys. 2021 Mar 21;154(11):115102. doi: 10.1063/5.0033805.
Optical nonlinear spectroscopies carry a high amount of information about the systems under investigation; however, as they report polarization signals, the resulting spectra are often congested and difficult to interpret. To recover the landscape of energy states and physical processes such as energy and electron transfer, a clear interpretation of the nonlinear signals is prerequisite. Here, we focus on the interpretation of the electrochromic band-shift signal, which is generated when an internal electric field is established in the system following optical excitation. Whereas the derivative shape of the band-shift signal is well understood in transient absorption spectroscopy, its emergence in two-dimensional electronic spectroscopy (2DES) has not been discussed. In this work, we employed 2DES to follow the dynamic band-shift signal in reaction centers of purple bacteria Rhodobacter sphaeroides at 77 K. The prominent two-dimensional derivative-shape signal appears with the characteristic formation time of the charge separated state. To explain and characterize the band-shift signal, we use expanded double-sided Feynman diagram formalism. We propose to distinguish two types of Feynman diagrams that lead to signals with negative amplitude: excited state absorption and re-excitation. The presented signal decomposition and modeling analysis allows us to recover precise electrochromic shifts of accessory bacteriochlorophylls, identify additional signals in the B band range, and gain a further insight into the electron transfer mechanism. In a broader perspective, expanded Feynman diagram formalism will allow for interpretation of all 2D signals in a clearer and more intuitive way and therefore facilitate studying the underlying photophysics.
光学非线性光谱学携带了大量关于所研究系统的信息;然而,由于它们报告的是极化信号,因此得到的光谱通常很复杂,难以解释。为了恢复能量状态和物理过程(如能量和电子转移)的全景,必须对非线性信号进行清晰的解释。在这里,我们专注于解释电致变色带移动信号,该信号是在系统受到光激发后内部电场建立时产生的。虽然带移动信号的导数形状在瞬态吸收光谱学中得到了很好的理解,但它在二维电子光谱学(2DES)中的出现尚未得到讨论。在这项工作中,我们使用 2DES 来跟踪在 77 K 下的紫色细菌 Rhodobacter sphaeroides 反应中心中的动态带移动信号。突出的二维导数形状信号出现在电荷分离态的特征形成时间。为了解释和表征带移动信号,我们使用扩展的双面费曼图形式主义。我们建议区分两种导致负幅度信号的费曼图类型:激发态吸收和再激发。所提出的信号分解和建模分析使我们能够恢复辅助细菌叶绿素的精确电致变色位移,识别 B 带范围内的其他信号,并进一步深入了解电子转移机制。从更广泛的角度来看,扩展的费曼图形式主义将允许以更清晰、更直观的方式解释所有 2D 信号,从而促进对基础光物理的研究。