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Understanding Ultrafast Dynamics of Conformation Specific Photo-Excitation: A Femtosecond Transient Absorption and Ultrafast Raman Loss Study

机译:了解特定构象光激发的超快动力学:飞秒瞬态吸收和超快拉曼损耗研究

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摘要

Excited state ultrafast conformational reorganization is recognized as an important phenomenon that facilitates light-induced functions of many molecular systems. This report describes the femtosecond and picosecond conformational relaxation dynamics of middle-ring and terminal ring twisted conformers of the acetylene pi-conjugated system bis(phenylethynyl)benzene, a model system for molecular wires. Through excitation wavelength dependent, femtosecond-transient absorption measurements, we found that the middle-ring and terminal ring twisted conformers relax at femtosecond (400600 fs) and picosecond (2024 ps) time scales, respectively. Actinic pumping into the red flank of the absorption spectrum leads to excitation of primarily planar conformers, and results in very different excited state dynamics. In addition, ultrafast Raman loss spectroscopic studies revealed the vibrational mode dependent relaxation dynamics for different excitation wavelengths. To corroborate our experimental findings, DFT and time-dependent DFT calculations were carried out. The FranckCondon simulation indicated that the vibronic structure observed in the electronic absorption and the fluorescence spectra are due to progressions and combinations of several vibrational modes corresponding to the phenyl ring and the acetylenic groups. Furthermore, the middle ring torsional rotation matches the room-temperature electronic absorption, in stark contrast to the terminal ring torsional rotation. Finally, we show that the middle-ring twisted conformer undergoes femtosecond torsional planarization dynamic, whereas the terminal rings relax on a few tens of picosecond time scale.
机译:激发态超快速构象重组被认为是促进许多分子系统的光诱导功能的重要现象。该报告描述了乙炔pi共轭体系双(苯基乙炔基)苯(分子线的模型系统)的中环和末端环扭曲构象异构体的飞秒和皮秒构象弛豫动力学。通过激发波长相关的,飞秒瞬态吸收测量,我们发现中环和末端环扭曲的构象异构体分别在飞秒(400600 fs)和皮秒(2024 ps)的时间尺度上松弛。光化学泵浦到吸收光谱的红色侧面导致主要是平面构象异构体的激发,并导致非常不同的激发态动力学。另外,超快速拉曼损耗光谱研究揭示了不同激发波长下依赖于振动模式的弛豫动力学。为了证实我们的实验结果,进行了DFT和随时间变化的DFT计算。 FranckCondon模拟表明,在电子吸收和荧光光谱中观察到的振动波结构是由于与苯环和炔基相对应的几种振动模式的进行和组合。此外,中间环的扭转旋转与室温电子吸收相匹配,这与终端环的扭转旋转形成鲜明的对比。最后,我们证明了中环扭曲共形体经历了飞秒扭转平面化动力学,而末端环在几十皮秒的时间尺度上松弛。

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