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Multi-element superconducting nanowire single photon detectors

机译:多元超导纳米线单光子探测器

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摘要

Single-photon-detector arrays can provide unparalleled performance and detailed information in applications that require precise timing and single photon sensitivity. Such arrays have been demonstrated using a number of single-photon-detector technologies, but the high performance of superconducting nanowire single photon detectors (SNSPDs) and the unavoidable overhead of cryogenic cooling make SNSPDs particularly likely to be used in applications that require detectors with the highest performance available. These applications are also the most likely to benefit from and fully utilize the large amount of information and performance advantages provided by a single-photon-detector array.Although the performance advantages of individual superconducting nanowire single photon detectors (SNSPDs) have been investigated since their first demonstration in 2001, the advantages gained by building arrays of multiple SNSPDs may be even more unique among single photon detector technologies. First, the simplicity and nanoscale dimensions of these detectors make it possible to easily operate multiple elements and to closely space these elements such that the active area of an array is essentially identical to that of a single element. This ability to eliminate seam-loss between elements, as well as the performance advantages gained by using multiple smaller elements, makes the multi-element approach an attractive way to increase the general detector performance (detection efficiency and maximum counting rate) as well as to provide new capabilities (photon-number, spatial, and spectral resolution). Additionally, in contrast to semiconductor-based single-photon detectors, SNSPDs have a negligible probability of spontaneously emitting photons during the detection process, eliminating a potential source of crosstalk between array elements.
机译:在要求精确定时和单光子灵敏度的应用中,单光子检测器阵列可以提供无与伦比的性能和详细信息。已经使用多种单光子检测器技术演示了这种阵列,但是超导纳米线单光子检测器(SNSPD)的高性能以及不可避免的低温冷却开销使得SNSPD特别适用于需要带有探测器的探测器。最高的性能。这些应用也是最有可能受益于并充分利用单光子探测器阵列提供的大量信息和性能优势的。尽管自单个超导纳米线单光子探测器(SNSPD)以来已经研究了它们的性能优势,在2001年的首次演示中,构建多个SNSPD阵列所获得的优势在单光子检测器技术中可能更加独特。首先,这些检测器的简单性和纳米级尺寸使得可以轻松操作多个元素并紧密间隔这些元素,从而使阵列的有效面积与单个元素的有效面积基本相同。这种消除元素之间接缝损失的能力,以及使用多个较小元素所获得的性能优势,使得多元素方法成为提高一般检测器性能(检测效率和最大计数率)以及提供新功能(光子数,空间和光谱分辨率)。此外,与基于半导体的单光子检测器相比,SNSPD在检测过程中自发发射光子的可能性微乎其微,从而消除了阵列元件之间潜在的串扰源。

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