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腔增强型和超快超导单光子探测器。

Cavity-Enhanced and Ultrafast Superconducting Single-Photon Detectors.

机构信息

Institute of Nanotechnology (INT), Karlsruhe Institute of Technology , 76344 Eggenstein-Leopoldshafen, Germany.

Institute of Theoretical Solid State Physics (TFP), Karlsruhe Institute of Technology , 76131 Karlsruhe, Germany.

出版信息

Nano Lett. 2016 Nov 9;16(11):7085-7092. doi: 10.1021/acs.nanolett.6b03344. Epub 2016 Oct 24.

Abstract

Ultrafast single-photon detectors with high efficiency are of utmost importance for many applications in the context of integrated quantum photonic circuits. Detectors based on superconductor nanowires attached to optical waveguides are particularly appealing for this purpose. However, their speed is limited because the required high absorption efficiency necessitates long nanowires deposited on top of the waveguide. This enhances the kinetic inductance and makes the detectors slow. Here, we solve this problem by aligning the nanowire, contrary to usual choice, perpendicular to the waveguide to realize devices with a length below 1 μm. By integrating the nanowire into a photonic crystal cavity, we recover high absorption efficiency, thus enhancing the detection efficiency by more than an order of magnitude. Our cavity enhanced superconducting nanowire detectors are fully embedded in silicon nanophotonic circuits and efficiently detect single photons at telecom wavelengths. The detectors possess subnanosecond decay (∼120 ps) and recovery times (∼510 ps) and thus show potential for GHz count rates at low timing jitter (∼32 ps). The small absorption volume allows efficient threshold multiphoton detection.

摘要

超快单光子探测器具有高效率,对于集成量子光子电路中的许多应用至关重要。基于超导纳米线附着在光波导上的探测器在这方面特别有吸引力。然而,它们的速度受到限制,因为所需的高吸收效率需要在波导顶部沉积长纳米线。这增加了动力学电感,使探测器变得缓慢。在这里,我们通过将纳米线与通常的选择相反,垂直于波导排列,解决了这个问题,从而实现了长度低于 1μm 的器件。通过将纳米线集成到光子晶体腔中,我们恢复了高吸收效率,从而将检测效率提高了一个数量级以上。我们的腔增强超导纳米线探测器完全嵌入在硅纳米光子电路中,并有效地在电信波长下检测单光子。探测器具有亚纳秒的衰减(约 120 ps)和恢复时间(约 510 ps),因此在低定时抖动(约 32 ps)下具有 GHz 计数率的潜力。小的吸收体积允许有效的阈值多光子检测。

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