论文标题
用100像素的光子划分检测器揭示光子统计数据
Unveiling photon statistics with a 100-pixel photon-number-resolving detector
论文作者
论文摘要
单光子检测器在量子信息科学和量子传感中无处不在。它们是众多科学发现和量子光学测试的基本测试的关键技术。光子编号的探测器是光的最终测量工具。但是,迄今为止,很少有探测器可以在几个光子水平下提供高保真光子数分辨率。在这里,我们演示了一个片上检测器,该检测器可以通过时空多路复用沿单个波导的超导纳米线来解决多达100个光子。 The unparalleled photon number resolution paired with the high-speed response exclusively allows us to unveil the quantum photon statistics of a true thermal light source for the first time, which is realized by direct measurement of high-order correlation function g^(N) with N up to 15, observation of photon-subtraction-induced photon number enhancement, and quantum-limited state discrimination against a coherent light source.我们的检测器为各种重要应用提供了可行的途径,包括光子量子计算和量子计量学。
Single-photon detectors are ubiquitous in quantum information science and quantum sensing. They are key enabling technologies for numerous scientific discoveries and fundamental tests of quantum optics. Photon-number-revolving detectors are the ultimate measurement tool of light. However, few detectors to date can provide high-fidelity photon number resolution at few-photon levels. Here, we demonstrate an on-chip detector that can resolve up to 100 photons by spatiotemporally multiplexing an array of superconducting nanowires along a single waveguide. The unparalleled photon number resolution paired with the high-speed response exclusively allows us to unveil the quantum photon statistics of a true thermal light source for the first time, which is realized by direct measurement of high-order correlation function g^(N) with N up to 15, observation of photon-subtraction-induced photon number enhancement, and quantum-limited state discrimination against a coherent light source. Our detector provides a viable route towards various important applications, including photonic quantum computation and quantum metrology.