Balevičius Vytautas, Abramavicius Darius, Polívka Tomáš, Galestian Pour Arpa, Hauer Jürgen
Department of Theoretical Physics, Faculty of Physics, Vilnius University , Sauletekio Avenue 9, Building 3, LT-10222 Vilnius, Lithuania.
Institute of Physics and Biophysics, Faculty of Science, University of South Bohemia , Branišovská 1760, 37005 České Budějovice, Czech Republic.
J Phys Chem Lett. 2016 Sep 1;7(17):3347-52. doi: 10.1021/acs.jpclett.6b01455. Epub 2016 Aug 15.
In π-conjugated chain molecules such as carotenoids, coupling between electronic and vibrational degrees of freedom is of central importance. It governs both dynamic and static properties, such as the time scales of excited state relaxation as well as absorption spectra. In this work, we treat vibronic dynamics in carotenoids on four electronic states (|S0⟩, |S1⟩, |S2⟩, and |Sn⟩) in a physically rigorous framework. This model explains all features previously associated with the intensely debated S* state. Besides successfully fitting transient absorption data of a zeaxanthin homologue, this model also accounts for previous results from global target analysis and chain length-dependent studies. Additionally, we are able to incorporate findings from pump-deplete-probe experiments, which were incompatible to any pre-existing model. Thus, we present the first comprehensive and unified interpretation of S*-related features, explaining them by vibronic transitions on either S1, S0, or both, depending on the chain length of the investigated carotenoid.
在类胡萝卜素等π共轭链分子中,电子自由度与振动自由度之间的耦合至关重要。它决定了动态和静态特性,如激发态弛豫的时间尺度以及吸收光谱。在这项工作中,我们在一个物理严谨的框架内处理类胡萝卜素在四个电子态(|S0⟩、|S1⟩、|S2⟩和|Sn⟩)上的振动电子动力学。该模型解释了先前与激烈争论的S态相关的所有特征。除了成功拟合玉米黄质同系物的瞬态吸收数据外,该模型还解释了先前全局目标分析和链长依赖性研究的结果。此外,我们能够纳入泵浦耗尽探测实验的结果,这些结果与任何现有模型都不兼容。因此,我们首次对与S相关的特征进行了全面统一的解释,根据所研究类胡萝卜素的链长,通过S1、S0或两者上的振动电子跃迁来解释这些特征。