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聚二乙炔链中激子极化激元的第一性原理建模。

First principles modeling of exciton-polaritons in polydiacetylene chains.

作者信息

Alvertis Antonios M, Pandya Raj, Quarti Claudio, Legrand Laurent, Barisien Thierry, Monserrat Bartomeu, Musser Andrew J, Rao Akshay, Chin Alex W, Beljonne David

机构信息

Cavendish Laboratory, University of Cambridge, J. J. Thomson Avenue, Cambridge CB3 0HE, United Kingdom.

Laboratory for Chemistry of Novel Materials, University of Mons, Place du Parc, 20, B-7000 Mons, Belgium.

出版信息

J Chem Phys. 2020 Aug 28;153(8):084103. doi: 10.1063/5.0019009.

Abstract

Exciton-polaritons in organic materials are hybrid states that result from the strong interaction of photons and the bound excitons that these materials host. Organic polaritons hold great interest for optoelectronic applications; however, progress toward this end has been impeded by the lack of a first principles approach that quantifies light-matter interactions in these systems, which would allow the formulation of molecular design rules. Here, we present a theoretical framework that combines first principles calculations for excitons with classical electrodynamics in order to quantify light-matter interactions. We exemplify our approach by studying variants of the conjugated polymer polydiacetylene, and we show that a large polymer conjugation length is critical toward strong exciton-photon coupling, hence underlying the importance of pure structures without static disorder. By comparing to our experimental reflectivity measurements, we show that the coupling of excitons to vibrations, manifested by phonon side bands in the absorption, has a strong impact on the magnitude of light-matter coupling over a range of frequencies. Our approach opens the way toward a deeper understanding of polaritons in organic materials, and we highlight that a quantitatively accurate calculation of the exciton-photon interaction would require accounting for all sources of disorder self-consistently.

摘要

有机材料中的激子极化激元是混合态,它由光子与这些材料中所含束缚激子的强相互作用产生。有机极化激元在光电子应用方面备受关注;然而,由于缺乏一种能量化这些系统中光与物质相互作用的第一性原理方法,阻碍了在此方面取得进展,而这种方法将有助于制定分子设计规则。在此,我们提出一个理论框架,该框架将激子的第一性原理计算与经典电动力学相结合,以量化光与物质的相互作用。我们通过研究共轭聚合物聚二乙炔的变体来举例说明我们的方法,并且我们表明,大的聚合物共轭长度对于强激子 - 光子耦合至关重要,从而凸显了无静态无序的纯结构的重要性。通过与我们的实验反射率测量结果进行比较,我们表明激子与振动的耦合(在吸收中由声子边带体现)在一系列频率范围内对光与物质耦合的大小有强烈影响。我们的方法为更深入理解有机材料中的极化激元开辟了道路,并且我们强调,对激子 - 光子相互作用进行定量准确的计算需要自洽地考虑所有无序源。

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