Photon-Number-Resolving Single-Photon Detector with a System Detection Efficiency of 98% and Photon-Number Resolution of 32

光子 探测器 物理 光子计数 光子反聚束 分辨率(逻辑) 光学 光电子学 计算机科学 人工智能
作者
Chaomeng Ding,Xing-Yu Zhang,Jia-Min Xiong,You Xiao,Tianzhu Zhang,Jia Huang,Hongxin Xu,Xiaoyu Liu,Lixing You,Zhen Wang,Hao Li
出处
期刊:ACS Photonics [American Chemical Society]
卷期号:12 (9): 4924-4931 被引量:10
标识
DOI:10.1021/acsphotonics.5c00508
摘要

High Resolution Image Download MS PowerPoint Slide Efficiently distinguishing photon numbers is a crucial yet challenging technology for various quantum information and quantum metrology applications. While superconducting transition edge sensors offer good photon-number-resolving (PNR) capabilities, they are hampered by low detection speed, timing jitter, and complex cooling and readout requirements. In this work, we present a significant advancement toward achieving high-fidelity PNR single-photon detectors by combing high efficiency superconducting nanowire single-photon detector and spatial multiplexing technology. The unique twin-layer configuration of superconducting nanowire atop a dielectric mirror ensures the near-unity detection efficiency. The segmented design, where each section is shunted by a resistor, enables spatial multiplexing, establishing a mapping relationship between pulse amplitude and registered photons. The fabricated detector exhibits impressive performance metrics, including a single-photon system detection efficiency (SDE) of ∼98% at a dark count rate of 20 cps and photon-number resolution capability up to 32. Further characterization through detector tomography reveals high fidelities for two-, three-, and four-photon events, approximately 87%, 73%, and 40% respectively. Moreover, the detector operates at a high count rate of 41 MHz at 3 dB-SDE, with a low timing jitter of as low as 40 ps. With its near-unity efficiency, high photon-number resolution, low dark count rate, fast detection speed, and superior timing resolution, we expect significant interest in these detectors, promising substantial benefits for weak light detection and optical quantum information applications.
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