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利用系综和单分子光谱探测线性寡聚噻吩中链长依赖的激子动力学。

Chain-Length-Dependent Exciton Dynamics in Linear Oligothiophenes Probed Using Ensemble and Single-Molecule Spectroscopy.

作者信息

Kim Tae-Woo, Kim Woojae, Park Kyu Hyung, Kim Pyosang, Cho Jae-Won, Shimizu Hideyuki, Iyoda Masahiko, Kim Dongho

机构信息

Spectroscopy Laboratory for Functional π-Electronic Systems and Department of Chemistry, Yonsei University , Seoul 03722, Korea.

Department of Chemistry, Graduate School of Science and Engineering, Tokyo Metropolitan University , Hachioji, Tokyo 192-0397, Japan.

出版信息

J Phys Chem Lett. 2016 Feb 4;7(3):452-8. doi: 10.1021/acs.jpclett.5b02864. Epub 2016 Jan 19.

Abstract

Exciton dynamics in π-conjugated molecular systems is highly susceptible to conformational disorder. Using time-resolved and single-molecule spectroscopic techniques, the effect of chain length on the exciton dynamics in a series of linear oligothiophenes, for which the conformational disorder increased with increasing chain length, was investigated. As a result, extraordinary features of the exciton dynamics in longer-chain oligothiophene were revealed. Ultrafast fluorescence depolarization processes were observed due to exciton self-trapping in longer and bent chains. Increase in exciton delocalization during dynamic planarization processes was also observed in the linear oligothiophenes via time-resolved fluorescence spectra but was restricted in L-10T because of its considerable conformational disorder. Exciton delocalization was also unexpectedly observed in a bent chain using single-molecule fluorescence spectroscopy. Such delocalization modulates the fluorescence spectral shape by attenuating the 0-0 peak intensity. Collectively, these results provide significant insights into the exciton dynamics in conjugated polymers.

摘要

π共轭分子体系中的激子动力学对构象无序高度敏感。利用时间分辨和单分子光谱技术,研究了链长对一系列线性寡聚噻吩激子动力学的影响,这些寡聚噻吩的构象无序随链长增加而增大。结果揭示了长链寡聚噻吩中激子动力学的非凡特征。由于激子在较长且弯曲的链中自陷,观察到了超快荧光去极化过程。通过时间分辨荧光光谱也观察到线性寡聚噻吩在动态平面化过程中激子离域增加,但由于其相当大的构象无序,在L-10T中受到限制。利用单分子荧光光谱还意外地观察到弯曲链中的激子离域。这种离域通过减弱0-0峰强度来调节荧光光谱形状。总体而言,这些结果为共轭聚合物中的激子动力学提供了重要见解。

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