A primary radiation standard based on quantum nonlinear optics

被引:0
作者
Samuel Lemieux
Enno Giese
Robert Fickler
Maria V. Chekhova
Robert W. Boyd
机构
[1] University of Ottawa,Department of Physics
[2] Max Planck Institute for the Science of Light,Physics Department
[3] Lomonosov Moscow State University,Institute of Optics
[4] University of Erlangen-Nuremberg,Institut für Quantenphysik and Center for Integrated Quantum Science and Technology
[5] University of Rochester,Photonics Laboratory, Physics Unit
[6] Universität Ulm,undefined
[7] Tampere University,undefined
来源
Nature Physics | 2019年 / 15卷
关键词
D O I
暂无
中图分类号
学科分类号
摘要
The black body remains the most prominent source of light for absolute radiometry1. Its main alternative, synchrotron radiation, requires costly and large facilities2. Quantum optics offers a new radiometric source: parametric down-conversion (PDC), a nonlinear optical process, in which pairwise photon correlations enable absolute calibration of photodetectors3–6. Since the emission rate crucially depends on the brightness of the electromagnetic field, quantum-mechanical fluctuations of the vacuum7 can be seen as a seed of spontaneous PDC, and their amplitude is a natural radiometric standard. Thus, they allow for the calibration of the spectral radiance of light sources8–11 by measuring the ratio between seeded and unseeded PDC. Here, we directly use the frequency spectrum of the electromagnetic vacuum to trigger spontaneous PDC and employ the generated light to infer the spectral response of a spectrometer over a broad spectral range. Then, we deduce the absolute quantum efficiency from the spectral shape of PDC in the high-gain regime, without relying on a seed or reference detector. Our results compare well with the ones obtained with a reference lamp, demonstrating a promising primary radiation standard.
引用
收藏
页码:529 / 532
页数:3
相关论文
共 48 条
  • [1] Lemke D(1967)The Synchrotron Radiation of the 6-GeV DESY Machine as a Fundamental Radiometric Standard Appl. Opt. 6 1043-1048
  • [2] Labs D(1980)Use of two-photon light for absolute calibration of photoelectric detectors Sov. J. Quantum Electron. 10 1112-1117
  • [3] Klyshko DN(1981)Absolute calibration of the sensitivity of photodetectors using a biphotonic field JETP Lett. 33 477-480
  • [4] Malygin AA(2007)High accuracy verification of a correlated-photon-based method for determining photon-counting detection efficiency Opt. Express 15 1390-1407
  • [5] Penin AN(1987)Absolute measurement of detector quantum efficiency using parametric downconversion Appl. Opt. 26 4616-4619
  • [6] Sergienko AV(1977)Utilization of vacuum fluctuations as an optical brightness standard Sov. J. Quantum Electron. 7 591-595
  • [7] Polyakov SV(1979)Measurement of brightness of light fluxes using vacuum fluctuations as a reference Sov. Phys. Dokl. 24 564-566
  • [8] Migdall AL(1998)Measuring absolute infrared spectral radiance with correlated visible photons: technique verification and measurement uncertainty Appl. Opt. 37 3455-3463
  • [9] Rarity JG(2016)Engineering the frequency spectrum of bright squeezed vacuum via group velocity dispersion in an SU(1, 1) interferometer Phys. Rev. Lett. 117 183601-2004
  • [10] Ridley KD(1995)Field quantization and radiative processes in dispersive dielectric media J. Mod. Opt. 42 1991-7515