首页> 外文期刊>Journal of physical chemistry letters >Fusion of Ultraviolet-Visible and Infrared Transient Absorption Spectroscopy Data to Model Ultrafast Photoisomerization
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Fusion of Ultraviolet-Visible and Infrared Transient Absorption Spectroscopy Data to Model Ultrafast Photoisomerization

机译:紫外线可见光和红外瞬态吸收光谱数据融合,以型号超快光硅酸化

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摘要

Ultrafast photoisomerization reactions generally start at a higher excited state with excess of internal vibrational energy and occur via conical intersections. This leads to ultrafast dynamics which are difficult to investigate with a single transient absorption spectroscopy technique, be it in the ultraviolet visible (UV-vis) or infrared (IR) domain. On one hand, the information available in the UV-vis domain is limited as only slight spectral changes are observed for different isomers. On the other hand, the interpretation of vibrational spectra is strongly hindered by intramolecular relaxation and vibrational cooling. These limitations can be circumvented by fusing UV-vis and IR transient absorption spectroscopy data in a multiset multivariate curve resolution analysis. We apply this approach to describe the spectrodynamics of the ultrafast cis trans photoisomerization around the C-N double bond observed for aromatic Schiff bases. Twisted intermediate states could be elucidated, and isomerization was shown to occur through a continuous complete rotation. More broadly, data fusion can be used to rationalize a vast range of ultrafast photoisomerization processes of interest in photochemistry.
机译:超速率光硅白化反应通常以更高的激发态开始,其具有过量内部振动能量并通过锥形交叉点发生。这导致超快动力学,难以用单个瞬态吸收光谱技术进行研究,使其在紫外线(UV-Vis)或红外(IR)结构域中。一方面,UV-VIS域中可获得的信息受到限制,仅为不同异构体观察到轻微的光谱变化。另一方面,通过分子间弛豫和振动冷却强烈阻碍振动光谱的解释。通过熔化UV-VIS和IR瞬态吸收光谱数据,可以在多重特多变量曲线分辨率分析分析分析中来避免这些限制。我们采用这种方法来描述围绕芳香族席位基地观察到的C-N双键周围超快CIS反式光学异构化的分频器。可以阐明扭曲的中间状态,并显示异构化通过连续完全旋转而发生。更广泛地,数据融合可用于合理化光明中感兴趣的广泛超快光电激发过程。

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