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高度导电有机薄膜中表面等离激元极化激元的直接观察。

Direct Observations of Surface Plasmon Polaritons in Highly Conductive Organic Thin Film.

机构信息

State Key Laboratory of Modern Optical Instrumentation, College of Optical Science and Engineering , Zhejiang University , Hangzhou 310027 , P. R. China.

MOE Key Laboratory of Low-Grade Energy Utilization Technologies and Systems, School of Energy & Power Engineering , Chongqing University , Chongqing 400044 , China.

出版信息

ACS Appl Mater Interfaces. 2019 Oct 23;11(42):39132-39142. doi: 10.1021/acsami.9b06360. Epub 2019 Oct 8.

Abstract

Plasmonic effect plays a significant role in many optoelectronic devices and enables various innovative applications. It has been widely studied in metallic materials, for example, Ag and Au, and later was expanded to transparent conductive oxides, etc. However, such plasmonic structures have limitations in many emerging optoelectronics including flexible optoelectronics, organic optoelectronics, and so on, due to their inorganic natures. In this manuscript, we discovered that the acid-modified highly conductive organic PEDOT:PSS film shows interesting plasmonic properties in the vis-NIR region and exhibits great potentials for activating surface plasmon polaritons. The dispersion curves of dielectric permittivity and optical constants of two modified PEDOT:PSS samples are obtained by inversion calculation of the spectroscopic ellipsometry data with the Drude-Lorentz dispersion model. The permittivity crossover wavelengths λ and the surface plasmon wavelengths λ are found to be located squarely in the 650-900 nm range, which will enable future plasmonic device applications in the vis-NIR region. The activation of surface plasmon polaritons propagation mode of modified PEDOT:PSS is directly observed and confirmed by prism coupling experiments. In addition, further quantitative analysis revealed that our modified PEDOT:PSS samples have comparable abilities to generate, propagate, and confine surface plasmon polaritons as indium tin oxide (ITO). To the best of our knowledge, this is the first direct demonstration of an organic structure showing equivalent plasmonic properties to the inorganic ones. We believe it will open up much more possibilities for the optoelectronic devices, due to the flexibility, lightness, biological compatibility, and solution processability of the organic plasmonic materials.

摘要

等离子体激元效应在许多光电设备中起着重要作用,并能够实现各种创新应用。它已在金属材料(例如 Ag 和 Au)中得到广泛研究,后来扩展到透明导电氧化物等。然而,由于其无机性质,这种等离子体结构在许多新兴光电技术中存在局限性,包括柔性光电、有机光电等。在本手稿中,我们发现酸改性的高导电有机 PEDOT:PSS 薄膜在可见近红外区域表现出有趣的等离子体特性,并显示出激活表面等离子体激元的巨大潜力。通过用 Drude-Lorentz 色散模型对光谱椭圆偏振数据进行反演计算,得到了两种改性 PEDOT:PSS 样品的介电常数和光学常数的色散曲线。发现改性 PEDOT:PSS 的介电常数交叉波长 λ 和表面等离子体波长 λ 恰好位于 650-900nm 范围内,这将使未来的等离子体器件应用能够覆盖到可见近红外区域。通过棱镜耦合实验直接观察和证实了改性 PEDOT:PSS 中表面等离子体激元传播模式的激活。此外,进一步的定量分析表明,我们的改性 PEDOT:PSS 样品在产生、传播和限制表面等离子体激元方面具有与氧化铟锡(ITO)相当的能力。据我们所知,这是首次直接证明有机结构具有与无机结构相当的等离子体特性。我们相信,由于有机等离子体材料的柔韧性、轻便性、生物兼容性和溶液加工性,它将为光电设备带来更多的可能性。

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