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Terahertz spoof plasmonic coaxial microcavity

机译:太赫兹欺骗等离子共轴微腔

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摘要

We theoretically demonstrate a subwavelength spoof surface-plasmon-polariton (SPP) microcavity on a planar metallic surface working at the terahertz regime with a high-quality factor and ultra-small mode volume. The microcavity is based on plasmonic and metamaterial notions, and it consists of an easy-to-manufacture circular aperture and a bell-shaped metallic core. It is shown that such a structure can sustain SPP eigenmodes whose fields are tightly trapped within the microcavity. Using the proposed structure, a total Q factor of 1000 (including losses from metals at low temperatures) and subwavelength mode volume of 0.00018(λ/2)~3 can be achieved in the THz range for the fundamental surface-plasmonic eigenmode at room temperature. Moreover, the key figures of merit such as resonance frequency can be flexibly tuned by modifying the geometry of the microcavity, making it attractive for broad applications in filters, light sources, energy storage, and on-chip optical communications.
机译:我们从理论上证明了在太赫兹状态下具有高质量因子和超小模式体积的平面金属表面上的亚波长欺骗表面等离子体激元极化(SPP)微腔。微腔基于等离激元和超材料概念,它由易于制造的圆形孔和钟形金属芯组成。结果表明,这种结构可以维持SPP本征模,其场被紧密地困在微腔内。使用所提出的结构,在室温下的基本表面等离子体本征模的THz范围内,可以实现总Q因子1000(包括低温下的金属损失)和0.00018(λ/ 2)〜3的亚波长模式体积。 。此外,可以通过修改微腔的几何形状来灵活地调节诸如谐振频率之类的关键性能指标,使其对于滤波器,光源,能量存储和片上光通信中的广泛应用具有吸引力。

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