Rivalta Ivan, Nenov Artur, Weingart Oliver, Cerullo Giulio, Garavelli Marco, Mukamel Shaul
Université de Lyon , CNRS, Institut de Chimie de Lyon, École Normale Supérieure de Lyon, 46 Allée d'Italie, F-69364 Lyon Cedex 07, France.
J Phys Chem B. 2014 Jul 17;118(28):8396-405. doi: 10.1021/jp502538m. Epub 2014 May 8.
Time-resolved two-dimensional (2D) electronic spectra (ES) tracking the evolution of the excited state manifolds of the retinal chromophore have been simulated along the photoisomerization pathway in bovine rhodopsin, using a state-of-the-art hybrid QM/MM approach based on multiconfigurational methods. Simulations of broadband 2D spectra provide a useful picture of the overall detectable 2D signals from the near-infrared (NIR) to the near-ultraviolet (UV). Evolution of the stimulated emission (SE) and excited state absorption (ESA) 2D signals indicates that the S1 → SN (with N ≥ 2) ESAs feature a substantial blue-shift only after bond inversion and partial rotation along the cis → trans isomerization angle, while the SE rapidly red-shifts during the photoinduced skeletal relaxation of the polyene chain. Different combinations of pulse frequencies are proposed in order to follow the evolution of specific ESA signals. These include a two-color 2DVis/NIR setup especially suited for tracking the evolution of the S1 → S2 transitions that can be used to discriminate between different photochemical mechanisms of retinal photoisomerization as a function of the environment. The reported results are consistent with the available time-resolved pump-probe experimental data, and may be used for the design of more elaborate transient 2D electronic spectroscopy techniques.
利用基于多组态方法的先进混合量子力学/分子力学方法,沿着牛视紫红质中的光异构化途径,模拟了跟踪视网膜发色团激发态流形演化的时间分辨二维(2D)电子光谱(ES)。宽带二维光谱的模拟提供了从近红外(NIR)到近紫外(UV)的整体可检测二维信号的有用图像。受激发射(SE)和激发态吸收(ESA)二维信号的演化表明,只有在沿着顺式→反式异构化角发生键反转和部分旋转之后,S1→SN(N≥2)的ESA才会出现显著的蓝移,而在多烯链的光诱导骨架弛豫过程中,SE会迅速红移。为了跟踪特定ESA信号的演化,提出了不同的脉冲频率组合。其中包括一种特别适合跟踪S1→S2跃迁演化的双色2DVis/NIR装置,该装置可用于区分视网膜光异构化作为环境函数的不同光化学机制。报道的结果与现有的时间分辨泵浦-探测实验数据一致,可用于设计更精细的瞬态二维电子光谱技术。