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泵浦探测极化各向异性中的对准、振子能级劈裂和相干耦合效应。

Alignment, vibronic level splitting, and coherent coupling effects on the pump-probe polarization anisotropy.

机构信息

Department of Chemistry and Biochemistry, University of Colorado, Boulder, Colorado 80309-0215, United States.

出版信息

J Phys Chem A. 2011 Apr 28;115(16):4101-13. doi: 10.1021/jp201928s. Epub 2011 Mar 18.

Abstract

The pump-probe polarization anisotropy is computed for molecules with a nondegenerate ground state, two degenerate or nearly degenerate excited states with perpendicular transition dipoles, and no resonant excited-state absorption. Including finite pulse effects, the initial polarization anisotropy at zero pump-probe delay is predicted to be r(0) = 3/10 with coherent excitation. During pulse overlap, it is shown that the four-wave mixing classification of signal pathways as ground or excited state is not useful for pump-probe signals. Therefore, a reclassification useful for pump-probe experiments is proposed, and the coherent anisotropy is discussed in terms of a more general transition dipole and molecular axis alignment instead of experiment-dependent ground- versus excited-state pathways. Although coherent excitation enhances alignment of the transition dipole, the molecular axes are less aligned than for a single dipole transition, lowering the initial anisotropy. As the splitting between excited states increases beyond the laser bandwidth and absorption line width, the initial anisotropy increases from 3/10 to 4/10. Asymmetric vibrational coordinates that lift the degeneracy control the electronic energy gap and off-diagonal coupling between electronic states. These vibrations dephase coherence and equilibrate the populations of the (nearly) degenerate states, causing the anisotropy to decay (possibly with oscillations) to 1/10. Small amounts of asymmetric inhomogeneity (2 cm(-1)) cause rapid (130 fs) suppression of both vibrational and electronic anisotropy beats on the excited state, but not vibrational beats on the ground electronic state. Recent measurements of conical intersection dynamics in a silicon napthalocyanine revealed anisotropic quantum beats that had to be assigned to asymmetric vibrations on the ground electronic state only [Farrow, D. A.; J. Chem. Phys. 2008, 128, 144510]. Small environmental asymmetries likely explain the observed absence of excited-state asymmetric vibrations in those experiments.

摘要

泵浦探测极化各向异性是为非简并基态、两个或多个垂直跃迁偶极子的简并或近简并激发态且无共振激发态吸收的分子计算的。考虑到有限脉冲效应,在零泵浦-探测延迟时,相干激发下的初始极化各向异性预计为 r(0) = 3/10。在脉冲重叠期间,证明信号途径的四波混频分类作为基态或激发态对于泵浦-探测信号是没有用的。因此,提出了一种对于泵浦-探测实验有用的重新分类,并根据更一般的跃迁偶极子和分子轴取向而不是实验相关的基态与激发态途径讨论了相干各向异性。尽管相干激发增强了跃迁偶极子的取向,但分子轴的取向比单偶极子跃迁的取向更差,从而降低了初始各向异性。随着激发态之间的分裂超过激光带宽和吸收线宽,初始各向异性从 3/10 增加到 4/10。解除简并的不对称振动坐标控制电子能隙和电子态之间的非对角耦合。这些振动使相干退相并使(近)简并态的布居平衡,导致各向异性衰减(可能有振荡)至 1/10。少量的不对称非均匀性(2 cm(-1))导致激发态上的振动和电子各向异性拍频的快速(130 fs)抑制,但基电子态上的振动拍频不受影响。最近在硅萘酞菁中对锥形交叉动力学的测量显示了各向异性量子拍频,这些拍频只能归因于基电子态上的不对称振动[Farrow, D. A.; J. Chem. Phys. 2008, 128, 144510]。小的环境不对称性可能解释了在这些实验中观察到的激发态不对称振动的缺失。

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