Fidler Andrew F, Singh Ved P, Long Phillip D, Dahlberg Peter D, Engel Gregory S
Department of Chemistry, Institute for Biophysical Dynamics, James Franck Institute, University of Chicago, 929 East 57th Street, Chicago, Illinois 60637, USA.
Program in the Biophysical Sciences, Institute for Biophysical Dynamics, University of Chicago, 929 East 57th Street, Chicago, Illinois 60637, USA.
Nat Commun. 2014;5:3286. doi: 10.1038/ncomms4286.
Time-resolved ultrafast optical probes of chiral dynamics provide a new window allowing us to explore how interactions with such structured environments drive electronic dynamics. Incorporating optical activity into time-resolved spectroscopies has proven challenging because of the small signal and large achiral background. Here we demonstrate that two-dimensional electronic spectroscopy can be adapted to detect chiral signals and that these signals reveal how excitations delocalize and contract following excitation. We dynamically probe the evolution of chiral electronic structure in the light-harvesting complex 2 of purple bacteria following photoexcitation by creating a chiral two-dimensional mapping. The dynamics of the chiral two-dimensional signal directly reports on changes in the degree of delocalization of the excitonic states following photoexcitation. The mechanism of energy transfer in this system may enhance transfer probability because of the coherent coupling among chromophores while suppressing fluorescence that arises from populating delocalized states. This generally applicable spectroscopy will provide an incisive tool to probe ultrafast transient molecular fluctuations that are obscured in non-chiral experiments.
手性动力学的时间分辨超快光学探针提供了一个新窗口,使我们能够探索与这种结构化环境的相互作用如何驱动电子动力学。由于信号小且非手性背景大,将光学活性纳入时间分辨光谱已被证明具有挑战性。在这里,我们证明二维电子光谱可以用于检测手性信号,并且这些信号揭示了激发后激发态如何离域和收缩。通过创建手性二维映射,我们动态探测了紫色细菌光捕获复合物2在光激发后手性电子结构的演化。手性二维信号的动力学直接反映了光激发后激子态离域程度的变化。该系统中的能量转移机制可能会由于发色团之间的相干耦合而提高转移概率,同时抑制由填充离域态产生的荧光。这种普遍适用的光谱将提供一个敏锐的工具,用于探测在非手性实验中被掩盖的超快瞬态分子波动。