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Spectral response of an infrared superconducting quantum detector

机译:红外超导量子检测器的光谱响应

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We analyze the spectral performance of recently developed single-photon quantum detector that consists of a narrow, nanometer sized meander-line made from ultra-thin superconducting film. The detector exploits a combined detection mechanism, in which avalanche multiplication of quasiparticles after absorption of a single photon and the bias current jointly produce a normal domain that results in a voltage pulse developing between the meander ends. With either the wavelength increase or the bias current decrease, the single-photon detection regime exhibits a cut-off. The wavelength, at which the cut-off occurs, varies from infrared waves to visible light depending on the superconducting material and operation conditions. Structural and geometrical non-uniformities of the meander line smooth out the otherwise expected sharp drop of the detection efficiency beyond the cut-off. We refine the early detector model and propose a tentative explanation of how superconducting fluctuations may additionally extend the detection efficiency beyond the cut-off wavelength.
机译:我们分析最近开发的单光子量子检测器的光谱性能,该探测器由由超薄超导膜制成的窄,纳米大小的曲折线组成。检测器利用组合的检测机构,其中在吸收单个光子和偏置电流后拟粒子的雪崩乘法,并且偏置电流接合产生导致曲折之间产生的电压脉冲的正常域。具有波长增加或偏置电流减小,单光子检测制度呈现截止值。根据超导材料和操作条件,截止发生的波长,截止,从红外波变为可见光。曲折线的结构和几何非均匀性平滑地将差别预期的检测效率急剧下降,超出截止值。我们优化早期探测器模型,并提出了一种暂定解释,超导波动如何延伸超出截止波长之外的检测效率。

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