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Plasmonic Structure Integrated Single-Photon Detector Configurations to Improve Absorptance and Polarization Contrast

机译:等离子结构集成单光子探测器配置,以改善吸收率和偏振对比度

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Configurations capable of maximizing both the absorption component of system detection efficiency and the achievable polarization contrast were determined for 1550 nm polarized light illumination of different plasmonic structure integrated superconducting nanowire single-photon detectors (SNSPDs) consisting of p = 264 nm and P = 792 nm periodic niobium nitride (NbN) patterns on silica substrate. Global effective NbN absorptance maxima appear in case of p/s-polarized light illumination in S/P-orientation (γ = 90°/0° azimuthal angle) and the highest polarization contrast is attained in S-orientation of all devices. Common nanophotonical origin of absorptance enhancement is collective resonance on nanocavity gratings with different profiles, which is promoted by coupling between localized modes in quarter-wavelength metal-insulator-metal nanocavities and laterally synchronized Brewster-Zenneck-type surface waves in integrated SNSPDs possessing a three-quarter-wavelength-scaled periodicity. The spectral sensitivity and dispersion characteristics reveal that device design specific optimal configurations exist.
机译:针对1550 nm的不同等离子结构集成超导纳米线单光子探测器(SNSPD)的1550 nm偏振光照明,确定了能够最大化系统检测效率的吸收成分和可实现的偏振对比度的配置,其中p = 264 nm和P = 792 nm二氧化硅衬底上的周期性氮化铌(NbN)图案。在以S / P方向(γ= 90°/ 0°方位角)的p / s偏振光照射的情况下,会出现全局有效NbN吸收率最大值,并且在所有设备的S方向上都可获得最高的偏振对比度。吸收率增强的常见纳米光子学起源是在具有不同轮廓的纳米腔光栅上的集体共振,这是通过四分之一波长金属-绝缘体-金属纳米腔中的局部模式与具有三个三阶积分的集成SNSPD中的横向同步Brewster-Zenneck型表面波之间的耦合而促进的。四分之一波长缩放的周期性。光谱灵敏度和色散特性表明存在器件设计特定的最佳配置。

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