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Influence of energy transfer on the intensity pattern of vibronic excitation studied by reduced density-matrix theory

机译:能量传递对减密度矩阵理论研究振动激发强度模式的影响

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Intensity pattern of the vibronic transitions of a molecular dimer consisting of two molecules interacting through the Coulombic coupling is theoretically studied using a reduced density-matrix approach. The monomeric molecules are assumed to be electronic two-state systems. A single vibration mode with a high frequency and a continuous distribution of low-frequency phonons represented by the Ohmic spectral density are coupled to the electronic transition of the respective molecules. The spin-Boson model is employed to include the effect of electron-vibration and electron-phonon couplings. The intermolecular Coulombic coupling is assumed to be weak (inducing the Forster type of energy transfer process). It is found that, in addition to the well-known excitonic shifts, the intensity of the vibronic side bands reduces with the intermolecular coupling strength in the J-aggregate type of dimer while it increases in the H-aggregate type. When the vibronic bands are blurred by the broadening resulting from the coupling of the electrons to the continuous distribution of the phonons, the absorption line shape shows a wide range of variation depending on the strength of the intermolecular coupling. (c) 2006 Elsevier Inc. All rights reserved.
机译:理论上,使用降低的密度矩阵方法研究了由通过库仑偶合相互作用的两个分子组成的分子二聚体的振动转变的强度模式。假设单体分子是电子二态系统。具有高频率的单一振动模式和由欧姆光谱密度表示的低频声子的连续分布耦合到各个分子的电子跃迁。自旋玻色子模型用于包括电子振动和电子-声子耦合的影响。分子间库伦耦合被认为是弱的(引起能量转移过程的福斯特类型)。已经发现,除了众所周知的激子位移,在J-聚集体类型的二聚体中,振动子带的强度随着分子间偶联强度的降低而在H-聚集体类型中的增强。当由于电子耦合到声子的连续分布而导致的扩宽使振动带模糊时,吸收线的形状会根据分子间耦合的强度而显示出很大的变化范围。 (c)2006 Elsevier Inc.保留所有权利。

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