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量子主方程方法研究纳米星树枝状系统的二阶超极化率

Quantum master equation approach to the second hyperpolarizability of nanostar dendritic systems.

作者信息

Nakano Masayoshi, Kishi Ryohei, Nakagawa Nozomi, Nitta Tomoshige, Yamaguchi Kizashi

机构信息

Division of Chemical Engineering, Department of Materials Engineering Science, Graduate School of Engineering Science, Osaka University, Toyonaka, Osaka 560-8531, Japan.

出版信息

J Phys Chem B. 2005 Apr 28;109(16):7631-6. doi: 10.1021/jp044599r.

Abstract

We investigate the dynamic second hyperpolarizability (gamma) of nanostar dendritic systems using the quantum master equation approach. In the nanostar dendritic systems composed of three-state monomers, the multistep exciton states are obtained by the dipole-dipole interactions, and the directional energy transport, i.e., exciton migration, from the periphery to the core is predicted to occur by the relaxation between exciton states originating in the exciton-phonon coupling. The effects of the intermolcecular interaction and the exciton migration, i.e., exciton relaxation, on the gamma in the third-harmonic generation (THG) are examined in the three-photon off- and on- resonance regions using the two-exciton model. Furthermore, the method for analysis of spatial contributions of excitons to gamma is presented by partitioning the total gamma into the one- and two-exciton contributions. It turns out that the exciton relaxation between exciton states causes significant broadening of the spectra of gamma and their mutual overlap as well as the relative increase of two-exciton contributions in the nanostar dendritic system.

摘要

我们采用量子主方程方法研究了纳米星树枝状系统的动态二阶超极化率(γ)。在由三态单体组成的纳米星树枝状系统中,通过偶极 - 偶极相互作用获得多步激子态,并且预计通过源于激子 - 声子耦合的激子态之间的弛豫会发生从外围到核心的定向能量传输,即激子迁移。使用双激子模型在三光子非共振和共振区域研究了分子间相互作用和激子迁移(即激子弛豫)对三次谐波产生(THG)中γ的影响。此外,通过将总γ划分为单激子和双激子贡献,提出了分析激子对γ的空间贡献的方法。结果表明,激子态之间的激子弛豫会导致纳米星树枝状系统中γ光谱的显著展宽及其相互重叠,以及双激子贡献的相对增加。

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