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Radiative Decay Engineering 7: Tamm State-Coupled Emission Using a Hybrid Plasmonic-Photonic Structure

机译:辐射衰减工程7:使用混合等离子-光子结构的Tamm状态耦合发射

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摘要

There is a continuing need to increase the brightness and photostability of fluorophores for use in biotechnology, medical diagnostics and cell imaging. One approach developed during the past decade is to use metallic surfaces and nanostructures. It is now known that excited state fluorophores display interactions with surface plasmons, which can increase the radiative decay rates, modify the spatial distribution of emission and result in directional emission. One important example is Surface Plasmon-Coupled Emission (SPCE). In this phenomenon the fluorophores at close distances from a thin metal film, typically silver, display emission over a small range of angles into the substrate. A disadvantage of SPCE is that the emission occur at large angles relative to the surface normal, and at angles which are larger than the critical angle for the glass substrate. The large angles make it difficult to collect all the coupled emission and have prevented use of SPCE with high-throughput and/or array applications.In the present report we describe a simple multi-layer metal-dielectric structure which allows excitation with light that is perpendicular (normal) to the plane and provides emission within a narrow angular distribution that is normal to the plane. This structure consist of a thin silver film on top of a multi-layer dielectric Bragg grating, with no nanoscale features except for the metal or dielectric layer thicknesses. Our structure is designed to support optical Tamm states, which are trapped electromagnetic modes between the metal film and the underlying Bragg grating. We used simulations with the transfer matrix method to understand the optical properties of Tamm states and localization of the modes or electric fields in the structure. Tamm states can exist with zero in-plane wavevector components and can be created without the use of a coupling prism. We show that fluorophores on top of the metal film can interact with the Tamm state under the metal film and display Tamm state-coupled emission (TSCE). In contrast to SPCE, the Tamm states can display either S- or P-polarization. The TSCE angle is highly sensitive to wavelength which suggests the use of Tamm structures to provide both directional emission and wavelength dispersion. Metallic structures can modify fluorophore decay rates but also have high losses. Photonic crystals have low losses, but may lack the enhanced light-induced fields near metals. The combination of plasmonic and photonic structures offers the opportunity for radiative decay engineering to design new formats for clinical testing and other fluorescence-based applications.
机译:持续需要增加用于生物技术,医学诊断和细胞成像的荧光团的亮度和光稳定性。在过去十年中开发的一种方法是使用金属表面和纳米结构。现在已知,激发态荧光团显示出与表面等离激元的相互作用,这可以增加辐射衰减率,改变发射的空间分布并导致定向发射。一个重要的例子是表面等离子耦合发射(SPCE)。在这种现象中,与金属薄膜(通常为银)相距很近的荧光团在很小的角度范围内向基板显示发射。 SPCE的缺点是发射相对于表面法线成大角度,并且以大于玻璃基板的临界角的角度发生。大角度使得很难收集所有耦合发射,并阻止了SPCE在高通量和/或阵列应用中的使用。在本报告中,我们描述了一种简单的多层金属介电结构,该结构允许使用垂直于(垂直于)平面并在垂直于该平面的狭窄角度分布内提供发射。这种结构由多层电介质布拉格光栅顶部的银薄膜组成,除了金属或电介质层的厚度外,没有纳米级的特征。我们的结构旨在支持光学Tamm状态,该状态为金属膜与下面的布拉格光栅之间的电磁模式陷阱。我们使用传递矩阵法进行仿真,以了解Tamm态的光学性质以及结构中模式或电场的局域性。 Tamm状态可以存在零个面内波矢分量,并且可以在不使用耦合棱镜的情况下创建。我们显示,金属膜顶部的荧光团可以与金属膜下的Tamm状态相互作用,并显示Tamm状态耦合发射(TSCE)。与SPCE相比,Tamm状态可以显示S极化或P极化。 TSCE角对波长高度敏感,这建议使用Tamm结构提供定向发射和波长色散。金属结构可以改变荧光团的衰减速率,但损耗也很高。光子晶体具有低损耗,但可能缺乏金属附近增强的光感应场。等离子体和光子结构的结合为辐射衰减工程提供了设计临床试验和其他基于荧光的新格式的机会。

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