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室温下通过相干激子-极化激元传播在无序有机半导体中的超长程能量传输

Ultralong-Range Energy Transport in a Disordered Organic Semiconductor at Room Temperature Via Coherent Exciton-Polariton Propagation.

作者信息

Hou Shaocong, Khatoniar Mandeep, Ding Kan, Qu Yue, Napolov Alexander, Menon Vinod M, Forrest Stephen R

机构信息

Department of Electrical Engineering and Computer Science, University of Michigan, Ann Arbor, MI, 48109, USA.

Department of Physics, City College of New York, City University of New York, New York, NY, 10031, USA.

出版信息

Adv Mater. 2020 Jul;32(28):e2002127. doi: 10.1002/adma.202002127. Epub 2020 Jun 2.

Abstract

Amorphous molecular solids are inherently disordered, exhibiting strong exciton localization. Optical microcavities containing such disordered excitonic materials have been theoretically shown to support both propagating and localized exciton-polariton modes. Here, the ultrastrong coupling of a Bloch surface wave photon and molecular excitons in a disordered organic thin film at room temperature is demonstrated, where the major fraction of the polaritons are propagating states. The delocalized exciton-polariton has a group velocity as high as 3 × 10 m s and a lifetime of 500 fs, leading to propagation distances of over 100 µm from the excitation source. The polariton intensity shows a halo-like pattern that is due to self-interference of the polariton mode, from which a coherence length of 20 µm is derived and is correlated with phase breaking by polariton scattering. The demonstration of ultralong-range exciton-polariton transport at room temperature promises new photonic and optoelectronic applications such as efficient energy transfer in disordered condensed matter systems.

摘要

非晶态分子固体本质上是无序的,表现出强烈的激子局域化。理论表明,包含此类无序激子材料的光学微腔能够支持传播和局域化的激子极化激元模式。在此,展示了室温下无序有机薄膜中布洛赫表面波光光子与分子激子的超强耦合,其中大部分极化激元处于传播状态。离域化的激子极化激元具有高达3×10 m/s的群速度和500 fs的寿命,导致从激发源传播的距离超过100 µm。极化激元强度呈现出类似光晕的图案,这是由于极化激元模式的自干涉所致,从中得出20 µm的相干长度,且该长度与极化激元散射引起的相位破坏相关。室温下超长程激子极化激元传输的演示为新的光子和光电子应用带来了希望,例如在无序凝聚态系统中的高效能量转移。

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