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首页> 外文期刊>The Journal of Chemical Physics >Detection of dark states in two-dimensional electronic photon-echo signals via ground-state coherence
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Detection of dark states in two-dimensional electronic photon-echo signals via ground-state coherence

机译:通过基态相干检测二维电子光子回波信号中的暗态

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摘要

Several recent experiments report on possibility of dark-state detection by means of so called beating maps of two-dimensional photon-echo spectroscopy [Ostroumov et al., Science 340, 52 (2013); Bakulin et al., Ultrafast Phenomena XIX (Springer International Publishing, 2015)]. The main idea of this detection scheme is to use coherence induced upon the laser excitation as a very sensitive probe. In this study, we investigate the performance of ground-state coherence in the detection of dark electronic states. For this purpose, we simulate beating maps of several models where the excited-state coherence can be hardly detected and is assumed not to contribute to the beating maps. The models represent strongly coupled electron-nuclear dynamics involving avoided crossings and conical intersections. In all the models, the initially populated optically accessible excited state decays to a lower-lying dark state within few hundreds femtoseconds. We address the role of Raman modes and of interstate-coupling nature. Our findings suggest that the presence of low-frequency Raman active modes significantly increases the chances for detection of dark states populated via avoided crossings, whereas conical intersections represent a more challenging task. (C) 2015 AIP Publishing LLC.
机译:最近的一些实验报道了通过所谓的二维光子回波光谱的跳动图检测暗态的可能性[Ostroumov et al。,Science 340,52(2013); Bakulin等人,《超快速现象XIX》(Springer国际出版,2015年)。该检测方案的主要思想是将激光激发时产生的相干性用作非常敏感的探针。在这项研究中,我们调查了基态相干性在暗电子状态检测中的性能。为此,我们模拟了几个模型的跳动图,在这些模型中很难检测到激发态相干性,并假定它们对跳动图没有贡献。该模型表示涉及避免的交叉和圆锥形交叉的强耦合电子核动力学。在所有模型中,最初填充的光学可访问激发态在几百飞秒内就会衰减到较低的暗态。我们讨论了拉曼模式和州际耦合性质的作用。我们的发现表明,低频拉曼有源模式的存在显着增加了通过避开交叉而检测到的暗态检测机会,而圆锥形交叉则代表了更具挑战性的任务。 (C)2015 AIP Publishing LLC。

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