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超强耦合下p型有机半导体的电导率和光电导率

Conductivity and Photoconductivity of a p-Type Organic Semiconductor under Ultrastrong Coupling.

作者信息

Nagarajan Kalaivanan, George Jino, Thomas Anoop, Devaux Eloise, Chervy Thibault, Azzini Stefano, Joseph Kripa, Jouaiti Abdelaziz, Hosseini Mir W, Kumar Anil, Genet Cyriaque, Bartolo Nicola, Ciuti Cristiano, Ebbesen Thomas W

机构信息

CNRS, ISIS, and icFRC, University of Strasbourg, 67000 Strasbourg, France.

CNRS, Laboratoire de Tectonique Moléculaire and icFRC, Institut Le Bel, University of Strasbourg, 67070 Strasbourg, France.

出版信息

ACS Nano. 2020 Aug 25;14(8):10219-10225. doi: 10.1021/acsnano.0c03496. Epub 2020 Aug 10.

Abstract

During the past decade, it has been shown that light-matter strong coupling of materials can lead to modified and often improved properties which has stimulated considerable interest. While charge transport can be enhanced in n-type organic semiconductors by coupling the electronic transition and thereby splitting the conduction band into polaritonic states, it is not clear whether the same process can also influence carrier transport in the valence band of p-type semiconductors. Here we demonstrate that it is indeed possible to enhance both the conductivity and photoconductivity of a p-type semiconductor rr-P3HT that is ultrastrongly coupled to plasmonic modes. It is due to the hybrid light-matter character of the virtual polaritonic excitations affecting the linear response of the material. Furthermore, in addition to being enhanced, the photoconductivity of rr-P3HT shows a modified spectral response due to the formation of the hybrid polaritonic states. This illustrates the potential of engineering the vacuum electromagnetic environment to improve the optoelectronic properties of organic materials.

摘要

在过去十年中,研究表明材料的光与物质强耦合能够导致材料性能的改变,且往往是性能提升,这引发了人们极大的兴趣。虽然通过耦合电子跃迁从而将导带分裂为极化激元态,可以增强n型有机半导体中的电荷传输,但目前尚不清楚相同的过程是否也会影响p型半导体价带中的载流子传输。在此,我们证明了对于与等离子体模式超强耦合的p型半导体rr-P3HT,确实有可能同时提高其电导率和光电导率。这是由于虚拟极化激元激发的光与物质混合特性影响了材料的线性响应。此外,除了增强之外,rr-P3HT的光电导率由于混合极化激元态的形成而呈现出改变的光谱响应。这说明了调控真空电磁环境以改善有机材料光电性能的潜力。

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