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非周期等离子体超表面上有机半导体薄膜的光学和电学性质

Optical and Electrical Properties of Organic Semiconductor Thin Films on Aperiodic Plasmonic Metasurfaces.

作者信息

Cheng Zhongkai, Javed Nasir, O'Carroll Deirdre M

机构信息

Department of Chemistry and Chemical Biology, Rutgers University, 123 Bevier Road, Piscataway, New Jersey 08854, United States.

Department of Material Science and Engineering, Rutgers University, 607 Taylor Road, Piscataway, New Jersey 08854, United States.

出版信息

ACS Appl Mater Interfaces. 2020 Aug 5;12(31):35579-35587. doi: 10.1021/acsami.0c07099. Epub 2020 Jul 23.

Abstract

Metal electrodes are playing an increasingly important role in controlling photon absorption and in promoting optimal light management in thin-film semiconductor devices. For organic optoelectronic devices, the conventional fabrication approach is to build the device on top of a transparent electrode, with metal electrode deposition as the last step. This makes it challenging to control the surface of the metal electrode to promote good light management properties. An inverted fabrication approach that builds the device on top of a metal electrode makes it possible to control the morphology of the metal surface independently of the organic semiconductor active layer to achieve a variety of photonic and plasmonic behaviors useful for devices. However, there are few reports of inverted fabrication of organic optoelectronic devices and its impacts on device properties. Silver (Ag) is the most suitable metal for fabrication of nanostructured electrodes with plasmonic behavior (i.e., plasmonic electrodes) because of its low parasitic absorption loss and high reflectivity. In this project, we describe the facile fabrication of silver nanoparticle (AgNP) aperiodic plasmonic metasurfaces and study their physical and optical characteristics. Then, we investigate the photonic and electrical behaviors of the aperiodic plasmonic metasurfaces when interfaced with poly(9,9-dioctylfluorene--benzothiadiazole) (F8BT) organic semiconducting polymer thin films. The luminescence quantum yield of F8BT thin films increases from 29% on planar Ag up to 66% on AgNP metasurfaces due to the Purcell effect and the improved extraction of emission coupled to surface plasmon polariton modes. In particular, we show that plasmonic enhancement can overcome ohmic losses associated with metals and metal-induced exciton quenching. According to the current-voltage characteristics of hole-only devices with and without aperiodic plasmonic metasurfaces, we conclude that AgNP aperiodic plasmonic metasurfaces have comparable electrical behavior to planar metal electrodes while having superior light management capability.

摘要

金属电极在控制光子吸收以及促进薄膜半导体器件的最佳光管理方面发挥着越来越重要的作用。对于有机光电器件,传统的制造方法是将器件构建在透明电极之上,最后一步进行金属电极沉积。这使得控制金属电极表面以促进良好的光管理特性具有挑战性。一种将器件构建在金属电极之上的倒置制造方法使得能够独立于有机半导体活性层来控制金属表面的形态,以实现对器件有用的各种光子和等离子体行为。然而,关于有机光电器件的倒置制造及其对器件性能影响的报道很少。银(Ag)因其低寄生吸收损耗和高反射率,是制造具有等离子体行为的纳米结构电极(即等离子体电极)最合适的金属。在本项目中,我们描述了银纳米颗粒(AgNP)非周期等离子体超表面的简便制造方法,并研究了它们的物理和光学特性。然后,我们研究了非周期等离子体超表面与聚(9,9 - 二辛基芴 - 苯并噻二唑)(F8BT)有机半导体聚合物薄膜界面时的光子和电学行为。由于珀塞尔效应以及与表面等离子体激元模式耦合的发射的改善提取,F8BT薄膜的发光量子产率从平面Ag上的29%提高到AgNP超表面上的66%。特别是,我们表明等离子体增强可以克服与金属相关的欧姆损耗和金属诱导的激子猝灭。根据有无非周期等离子体超表面的仅空穴器件的电流 - 电压特性,我们得出结论,AgNP非周期等离子体超表面具有与平面金属电极相当的电学行为,同时具有卓越的光管理能力。

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