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首页> 外文期刊>Applied Superconductivity, IEEE Transactions on >Surface Plasmon-Enhanced Coupling of Optical Guided Waves to High-Temperature Superconducting Optoelectronic Structures
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Surface Plasmon-Enhanced Coupling of Optical Guided Waves to High-Temperature Superconducting Optoelectronic Structures

机译:光导波与高温超导光电结构的表面等离激元增强耦合

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摘要

A novel technique is proposed for coupling near-infrared and visible optical power to high-temperature superconducting (HTS) optoelectronic structures, fabricated on a high-index substrate, by means of the excitation of surface plasmon polariton (SPP) waves at the interface of the HTS layer and a metal cladding. The modal characteristics of these guided waves differ from those of the SPP modes of a metal slab bounded by symmetric or asymmetric dielectric layers because of the presence of a high-index semi-infinite substrate at close proximity. The modal dispersion of the guided mode exhibits a cutoff with increasing HTS thicknesses. Inasmuch as the HTS layer possesses a large extinction factor, it absorbs most of the optical power, whereas in a conventional dielectric–metal structure, the power is virtually absorbed by the metal. Furthermore, the variation of the coupling efficiency as a function of the HTS thickness is examined, and it will be demonstrated that the surface plasmon-assisted coupling technique outperforms unguided illumination schemes. The proposed technique and structure are particularly useful for guided-wave superconducting optoelectronic devices, including superconducting photodetectors and photomixers.
机译:提出了一种新技术,该技术通过在高折射率衬底上制造的表面等离子体激元(SPP)波的激发,将近红外光和可见光功率耦合到在高折射率衬底上制造的高温超导(HTS)光电结构。 HTS层和金属覆层。这些导波的模态特性与以对称或不对称介电层为边界的金属板的SPP模态特性不同,这是因为在附近存在高折射率半无限大衬底。导模的模态色散随HTS厚度的增加而呈现出截止值。由于HTS层具有较大的消光系数,因此它吸收了大部分光功率,而在传统的介电金属结构中,该功率实际上被金属吸收了。此外,研究了耦合效率随HTS厚度变化的变化,并且将证明表面等离激元辅助耦合技术的性能优于非引导照明方案。所提出的技术和结构对于包括超导光电检测器和光电混合器的导波超导光电器件特别有用。

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