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可调激发对类胡萝卜素影响的振动能量弛豫方法解释。

Effects of tunable excitation in carotenoids explained by the vibrational energy relaxation approach.

机构信息

School of Biological and Chemical Sciences, Queen Mary University of London, Mile End Road, London, E1 4NS, UK.

Photonics Institute, TU Wien, Gusshausstr. 27, 1040, Vienna, Austria.

出版信息

Photosynth Res. 2018 Mar;135(1-3):55-64. doi: 10.1007/s11120-017-0423-6. Epub 2017 Jul 24.

Abstract

Carotenoids are fundamental building blocks of natural light harvesters with convoluted and ultrafast energy deactivation networks. In order to disentangle such complex relaxation dynamics, several studies focused on transient absorption measurements and their dependence on the pump wavelength. However, such findings are inconclusive and sometimes contradictory. In this study, we compare internal conversion dynamics in [Formula: see text]-carotene, pumped at the first, second, and third vibronic progression peak. Instead of employing data fitting algorithms based on global analysis of the transient absorption spectra, we apply a fully quantum mechanical model to treat the high-frequency symmetric carbon-carbon (C=C and C-C) stretching modes explicitly. This model successfully describes observed population dynamics as well as spectral line shapes in their time-dependence and allows us to reach two conclusions: Firstly, the broadening of the induced absorption upon excess excitation is an effect of vibrational cooling in the first excited state ([Formula: see text]). Secondly, the internal conversion rate between the second excited state ([Formula: see text]) and [Formula: see text] crucially depends on the relative curve displacement. The latter point serves as a new perspective on solvent- and excitation wavelength-dependent experiments and lifts contradictions between several studies found in literature.

摘要

类胡萝卜素是具有复杂超快能量失活网络的天然光收集器的基本结构单元。为了理清这种复杂的弛豫动力学,有几项研究集中在瞬态吸收测量及其对泵浦波长的依赖性上。然而,这些发现并不确定,有时甚至相互矛盾。在这项研究中,我们比较了在[公式:见文本]-胡萝卜素中,在第一、第二和第三振动态峰值处被泵浦时的内转换动力学。我们没有采用基于瞬态吸收光谱全局分析的数据分析拟合算法,而是应用了一个全量子力学模型来明确处理高频对称的碳-碳(C=C 和 C-C)伸缩模式。该模型成功地描述了观察到的群体动力学以及光谱线形状的时间依赖性,使我们能够得出两个结论:首先,在过激发时诱导吸收的展宽是第一激发态([公式:见文本])中振动冷却的结果。其次,第二激发态([公式:见文本])和[公式:见文本]之间的内转换速率与相对曲线位移密切相关。后一点为溶剂和激发波长依赖性实验提供了一个新的视角,并消除了文献中几项研究之间的矛盾。

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