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首页> 外文期刊>The journal of physical chemistry, B. Condensed matter, materials, surfaces, interfaces & biophysical >Direct Observation of Cascade of Photoinduced Ultrafast Intramolecular Charge Transfer Dynamics in Diphenyl Acetylene Derivatives: Via Solvation and Intramolecular Relaxation
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Direct Observation of Cascade of Photoinduced Ultrafast Intramolecular Charge Transfer Dynamics in Diphenyl Acetylene Derivatives: Via Solvation and Intramolecular Relaxation

机译:直接观察联苯乙炔衍生物中的光诱导超快分子内电荷转移动力学的级联:通过溶剂化和分子内弛豫。

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Interaction of light with electron donor-acceptor pi-conjugated systems leading to intramolecular charge transfer (ICT) plays an essential role in transformation of light energy. Here the cascade of photoinduced ICT processes is directly observed by investigating the excited state relaxation dynamics of cyano and mono/di methoxy substituted diphenyl acetylene derivatives using femtosecond pump-probe spectroscopy and nanosecond laser flash photolysis. The femtosecond transient absorption spectra of the chromophores upon ultrafast excitation reveal the dynamics of intermediates involved in transition from initially populated Frank-Condon state to local excited state (LE). It also provides the dynamic details of the transition from the LE to the charge transfer state yielding the formation of the radical ions. Finally, the charge transfer state decays to the triplet state by geminate charge recombination. The latter dynamics are observed in the nanosecond transient absorption spectra. It is found that excited state relaxation pathways are controlled by different stages of solvation and intramolecular relaxation depending on the solvent polarity. The twisted ICT state is more stabilized (978 ps) in acetonitrile than cyclohexane where major components of transient absorption originate from the S-1 state.
机译:光与导致分子内电荷转移(ICT)的电子供体-受体pi共轭体系的相互作用在光能转化中起着至关重要的作用。在这里,通过使用飞秒泵浦探针光谱法和纳秒激光闪光光解法研究氰基和单/二甲氧基取代的二苯基乙炔衍生物的激发态弛豫动力学,可以直接观察到光诱导ICT过程的级联。超快激发时发色团的飞秒瞬态吸收光谱揭示了涉及从最初填充的Frank-Condon态到局部激发态(LE)跃迁的中间体的动力学。它还提供了从LE到电荷转移状态过渡的动态细节,从而形成了自由基离子。最终,电荷转移状态通过双电荷复合而衰减为三重态。在纳秒瞬态吸收光谱中观察到后者的动力学。发现激发态弛豫途径由溶剂化和分子内弛豫的不同阶段控制,这取决于溶剂极性。乙腈中的ICT扭曲态比环己烷更稳定(978 ps),后者的瞬态吸收主要成分来自S-1状态。

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