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Ultrafast structural flattening motion in photoinduced excited state dynamics of a bis(diimine) copper(I) complex

机译:双(二亚胺)铜(I)配合物的光致激发态动力学中的超快结构展平运动

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The ultrafast photoinduced structural change dynamics of a prototypical Cu(I) complex, namely, [Cu(dmp)(2)](+) (dmp = 2,9-dimethyl-1,10-phenanthroline), is investigated based on the theoretical analysis of static and dynamical calculations at the all-atomic level. This work mainly focuses on the intriguing structural flattening features of [Cu(dmp)(2)](+) occurring in the metal-to-ligand charge transfer singlet excited state ((MLCT)-M-1) on the sub-picosecond timescale. Our estimated time constant (similar to 675 fs) of this "flattening'' motion is in good agreement with recent experimental values. The full-dimensional excited-state nonadiabatic dynamic simulation provides a direct view of the ultrafast photoinduced events of [Cu(dmp)(2)](+), especially, the structural flattening mechanism on the S-1 state. Several molecular motions (such as Cu-N stretching, the motion of the substituted groups etc.) with distinguishable time scales are involved in the flattening dynamics. The Fourier transformation of the time-dependent oscillation of the Cu-N bond and the N-Cu-N bond angle provides consistent conclusions with the experimental spectrum analysis. These dynamics details imply that various nuclear motions are strongly coupled in the high-dimensional excited-state potential energy surface responsible for the geometrical evolution of [Cu(dmp)(2)](+). This work provides us a unique fundamental understanding of the ultrafast photoinduced excited-state nonadiabatic process of Cu(I) complexes and their derivatives, which should have potential impacts on various research fields, such as photo-catalysts, dye-sensitized solar cells (DSSCs), and organic light emitting diodes (OLEDs).
机译:原型Cu(I)复合物,即[Cu(dmp)(2)](+)(dmp = 2,9-二甲基-1,10-菲咯啉)的超快光诱导结构变化动力学,是基于全原子级静态和动态计算的理论分析。这项工作主要集中在亚皮秒的金属-配体电荷转移单重激发态((MLCT)-M-1)中发生的[Cu(dmp)(2)](+)的有趣结构变平特征。时间尺度。我们估计的这种“展平”运动的时间常数(近似于675 fs)与最近的实验值非常吻合。全尺寸激发态非绝热动力学模拟提供了[Cu(dmp )(2)](+),特别是在S-1状态下的结构展平机制,其中涉及几个具有明显时标的分子运动(例如Cu-N拉伸,取代基的运动等)。 Cu-N键和N-Cu-N键角随时间变化的振荡的傅立叶变换与实验光谱分析提供了一致的结论,这些动力学细节暗示着各种核运动在高光谱中是强耦合的。态[Cu(dmp)(2)](+)几何演化的三维激发态势能面,这项工作为我们提供了对超快光诱导激发态非原子的独特基础理解Cu(I)配合物及其衍生物的绝热过程,应该对光催化,染料敏化太阳能电池(DSSC)和有机发光二极管(OLED)等各个研究领域产生潜在影响。

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