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质子溶剂中激发态噻吨酮的嵌合行为:I. 实验

Chimeric behavior of excited thioxanthone in protic solvents: I. Experiments.

作者信息

Villnow T, Ryseck G, Rai-Constapel V, Marian C M, Gilch P

机构信息

Institut für Physikalische Chemie and ‡Institut für Theoretische Chemie und Computerchemie, Heinrich-Heine-Universität Düsseldorf , Universitätstrasse 1, D-40225 Düsseldorf, Germany.

出版信息

J Phys Chem A. 2014 Dec 18;118(50):11696-707. doi: 10.1021/jp5099393. Epub 2014 Dec 10.

Abstract

The photophysics of thioxanthone (TX) dissolved in methanol (MeOH) and 2,2,2,-trifluoroethanol (TFE) was studied by time-resolved fluorescence and absorption spectroscopy. The spectrally integrated stimulated emission is seen to lose amplitude within ∼5-10 ps. This is much shorter than the fluorescence lifetimes of the compound (2.7 ns for MeOH and 7.6 ns for TFE). The initial reduction in amplitude is attributed to reversible intersystem crossing between the primarily excited (1)ππ* and a triplet (3)nπ* state. The latter one is energetically slightly (∼0.02 eV) above the former one. Addition of the quencher 1-methylnaphthalene (1-MN) reduces the fluorescence lifetime and yields triplet excited 1-MN, giving further evidence for the equilibrium of singlet and triplet excitations. The depopulation of these two states on the nanosecond time scale results in the rise of the lowest triplet state, a (3)ππ* state. Temperature dependencies attribute this to an activated internal conversion process between the two triplet states. Kinetic and energetic parameters derived from the experimental data will be compared with quantum chemical results in the accompanying paper [Rai-Constapel , V. , Villnow , T. , Ryseck , G. , Gilch , P. , and Marian , C. M. J. Phys. Chem. A 2014 , DOI: 10.1021/jp5099415].

摘要

通过时间分辨荧光和吸收光谱研究了溶解在甲醇(MeOH)和2,2,2-三氟乙醇(TFE)中的噻吨酮(TX)的光物理性质。光谱积分受激发射在约5 - 10皮秒内幅度降低。这比该化合物的荧光寿命(MeOH中为2.7纳秒,TFE中为7.6纳秒)短得多。幅度的初始降低归因于主要激发态(1)ππ和三重态(3)nπ之间的可逆系间窜越。后者在能量上比前者略高(约0.02电子伏特)。加入猝灭剂1-甲基萘(1-MN)会降低荧光寿命并产生三重态激发的1-MN,这进一步证明了单重态和三重态激发的平衡。这两个态在纳秒时间尺度上的粒子数减少导致最低三重态(3)ππ*态的上升。温度依赖性将此归因于两个三重态之间的活化内转换过程。从实验数据得出的动力学和能量参数将与随附论文[Rai-Constapel, V., Villnow, T., Ryseck, G., Gilch, P., and Marian, C. M. J. Phys. Chem. A 2014, DOI: 10.1021/jp5099415]中的量子化学结果进行比较。

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