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二维共振拉曼信号在化学反应中振子相干传递的研究。

Two-Dimensional Resonance Raman Signatures of Vibronic Coherence Transfer in Chemical Reactions.

机构信息

Department of Chemistry, University of North Carolina at Chapel Hill, Chapel Hill, NC, 27599, USA.

出版信息

Top Curr Chem (Cham). 2017 Nov 2;375(6):87. doi: 10.1007/s41061-017-0173-0.

Abstract

Two-dimensional resonance Raman (2DRR) spectroscopy has been developed for studies of photochemical reaction mechanisms and structural heterogeneity in condensed phase systems. 2DRR spectroscopy is motivated by knowledge of non-equilibrium effects that cannot be detected with traditional resonance Raman spectroscopy. For example, 2DRR spectra may reveal correlated distributions of reactant and product geometries in systems that undergo chemical reactions on the femtosecond time scale. Structural heterogeneity in an ensemble may also be reflected in the 2D spectroscopic line shapes of both reactive and non-reactive systems. In this chapter, these capabilities of 2DRR spectroscopy are discussed in the context of recent applications to the photodissociation reactions of triiodide. We show that signatures of "vibronic coherence transfer" in the photodissociation process can be targeted with particular 2DRR pulse sequences. Key differences between the signal generation mechanisms for 2DRR and off-resonant 2D Raman spectroscopy techniques are also addressed. Overall, recent experimental developments and applications of the 2DRR method suggest that it will be a valuable tool for elucidating ultrafast chemical reaction mechanisms.

摘要

二维共振拉曼(2DRR)光谱学已被开发用于研究凝聚相体系中的光化学反应机制和结构异质性。2DRR 光谱学的动机是了解传统共振拉曼光谱学无法检测到的非平衡效应。例如,2DRR 光谱可能揭示在经历飞秒时间尺度化学反应的体系中反应物和产物几何形状的相关分布。在体系中,结构异质性也可能反映在反应性和非反应性体系的二维光谱线形状中。在本章中,将根据最近在三碘化物光解反应中的应用,讨论 2DRR 光谱学的这些功能。我们表明,可以使用特定的 2DRR 脉冲序列来针对光解过程中的“振动相干转移”特征进行定位。还讨论了 2DRR 和非共振二维拉曼光谱技术的信号产生机制之间的关键区别。总体而言,2DRR 方法的最新实验发展和应用表明,它将是阐明超快化学反应机制的有价值工具。

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