An efficiency and response enhanced metamaterial single photon detector

Guanhai Li, Weida Hu, Shaowei Wang, Xiaoshuang Chen, W. Lu
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引用次数: 1

Abstract

With asymmetric split ring metamaterial periodically placed on top of the niobium nitride (NbN) nanowire meander, we theoretically propose a kind of metal-insulator-metallic (MIM) metamaterial nanocavity to enhance absorbing efficiency and shorten response time of the superconducting NbN nanowire single photon detector (SNSPD) operating at wavelength of 1550 nm. Up to 99.6% of the energy is absorbed and 96.5% dissipated in the nanowire. Meanwhile, taking advantage of this high efficiency absorbing cavity, we implement a more sparse arrangement of the NbN nanowire of the filling factor 0.2, which significantly lessens the nanowire and crucially boosts the response time to be only 40% of reset time in previous evenly spaced meander design. Together with trapped mode resonance, a standing wave oscillation mechanism is presented to explain the high efficiency and broad bandwidth properties. To further demonstrate the advantages of the nanocavity, a four-pixel SNSPD on 10 μm×10 μm area is designed to further reduce 75% reset time while maintaining 70% absorbing efficiency. Utilizing the asymmetric split ring metamaterial, we show a higher efficiency and more rapid response SNSPD configuration to contribute to the development of single photon detectors.
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一种效率和响应增强的超材料单光子探测器
为了提高氮化铌(NbN)纳米线单光子探测器(SNSPD)的吸收效率,缩短响应时间,我们在纳米线弯曲上周期性地放置不对称分裂环超材料,从理论上提出了一种金属-绝缘体-金属(MIM)超材料纳米腔,用于1550 nm波长的超导NbN纳米线单光子探测器(SNSPD)。高达99.6%的能量被吸收,96.5%的能量在纳米线中消散。同时,利用这种高效的吸收腔,我们实现了填充系数为0.2的NbN纳米线的更稀疏的排列,这大大减少了纳米线,并且关键地提高了响应时间,仅为先前均匀间隔弯曲设计中复位时间的40%。与困模共振一起,提出了驻波振荡机制来解释高效率和宽带宽的特性。为了进一步证明纳米空腔的优势,设计了一个面积为10 μm×10 μm的4像素SNSPD,进一步减少75%的重置时间,同时保持70%的吸收效率。利用非对称分裂环超材料,我们展示了一个更高效率和更快响应的SNSPD结构,为单光子探测器的发展做出了贡献。
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