论文标题

检测具有接近统一系统检测效率的红外单光子

Detecting Infrared Single Photons with Near-Unity System Detection Efficiency

论文作者

Chang, Jin, Los, Johannes W. N., Tenorio-Pearl, Jaime Oscar, Noordzij, Niels, Gourgues, Ronan, Guardiani, Antonio, Zichi, Julien R., Pereira, Silvania F., Urbach, H. Paul, Zwiller, Val, Dorenbos, Sander N., Zadeh, Iman Esmaeil

论文摘要

单光子检测器是光学中必不可少的工具,从基本测量到量子信息处理。超导纳米线单光子检测器以前所未有的效率,短时间的时间和高频率范围内的高时间分辨率检测单个光子的能力,从而实现了量子光学元件的重大进步。然而,将近空系统检测效率与高正时性能相结合仍然是一个重大挑战。在这项工作中,我们显示了在膜上制造的新型超导纳米线单光子探测器,该膜在膜上以94-99.5(加上负2.07%)的系统检测效率在1280-1500 nm的波长范围内进行了系统检测效率。 SIO2/AU膜可在小SNSPD中吸收宽带,从而提供了高度检测效率,并结合了高正时性能。由于低噪声低温放大器在同一低温恒温器中运行,我们的有效探测器达到了15-26 ps范围内的时机抖动。我们讨论了光学设计,设备制造以及准确可靠的检测效率测量的主要挑战,以实现高性能单光子检测。结果,量子信息科学,量子计量,红外成像和量子网络的快速发展领域将从这种深远的量子检测技术中受益匪浅。

Single photon detectors are indispensable tools in optics, from fundamental measurements to quantum information processing. The ability of superconducting nanowire single photon detectors to detect single photons with unprecedented efficiency, short dead time and high time resolution over a large frequency range enabled major advances in quantum optics. However, combining near-unity system detection efficiency with high timing performance remains an outstanding challenge. In this work, we show novel superconducting nanowire single photon detectors fabricated on membranes with 94-99.5 (plus minus 2.07%) system detection efficiency in the wavelength range 1280-1500 nm. The SiO2/Au membrane enables broadband absorption in small SNSPDs, offering high detection efficiency in combination with high timing performance. With low noise cryogenic amplifiers operated in the same cryostat, our efficient detectors reach timing jitter in the range of 15-26 ps. We discuss the prime challenges in optical design, device fabrication as well as accurate and reliable detection efficiency measurements to achieve high performance single-photon detection. As a result, the fast-developing fields of quantum information science, quantum metrology, infrared imaging and quantum networks will greatly benefit from this far-reaching quantum detection technology.

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