Department of Physics, Moscow State Pedagogical University, Moscow, 119992, Russia.
Institute of Nanotechnology, Karlsruhe Institute of Technology, Karlsruhe, 76132, Germany.
Sci Rep. 2017 Jul 6;7(1):4812. doi: 10.1038/s41598-017-05142-1.
While single photon detectors provide superior intensity sensitivity, spectral resolution is usually lost after the detection event. Yet for applications in low signal infrared spectroscopy recovering information about the photon's frequency contributions is essential. Here we use highly efficient waveguide integrated superconducting single-photon detectors for on-chip coherent detection. In a single nanophotonic device, we demonstrate both single-photon counting with up to 86% on-chip detection efficiency, as well as heterodyne coherent detection with spectral resolution f/∆f exceeding 10. By mixing a local oscillator with the single photon signal field, we observe frequency modulation at the intermediate frequency with ultra-low local oscillator power in the femto-Watt range. By optimizing the nanowire geometry and the working parameters of the detection scheme, we reach quantum-limited sensitivity. Our approach enables to realize matrix integrated heterodyne nanophotonic devices in the C-band wavelength range, for classical and quantum optics applications where single-photon counting as well as high spectral resolution are required simultaneously.
虽然单光子探测器提供了卓越的强度灵敏度,但在检测事件之后,通常会失去光谱分辨率。然而,对于低信号红外光谱学中的应用,恢复有关光子频率贡献的信息是至关重要的。在这里,我们使用高效的波导集成超导单光子探测器进行片上相干检测。在单个纳米光子器件中,我们演示了高达 86%的片上检测效率的单光子计数,以及具有超过 10 的光谱分辨率 f/∆f 的外差相干检测。通过将本振与单光子信号场混合,我们在飞瓦范围内的超低本振功率下观察到中频的频率调制。通过优化纳米线几何形状和检测方案的工作参数,我们达到了量子极限灵敏度。我们的方法使得能够在 C 波段波长范围内实现矩阵集成外差纳米光子器件,适用于需要同时进行单光子计数和高光谱分辨率的经典和量子光学应用。