Quantum non-Gaussianity certification of photon number-resolving detectors

被引:1
|
作者
Grygar, Jan [1 ]
Hlousek, Josef [1 ]
Fiurasek, Jaromir [1 ]
Jezek, Miroslav [1 ]
机构
[1] Palacky Univ, Dept Opt, Fac Sci, 17 Listopadu 1192-12, Olomouc 77900, Czech Republic
关键词
STATES;
D O I
10.1364/OE.463786
中图分类号
O43 [光学];
学科分类号
070207 ; 0803 ;
摘要
We report on direct experimental certification of the quantum non-Gaussian character of a photon number-resolving detector. The certification protocol is based on an adaptation of the existing quantum non-Gaussianity criteria for quantum states to quantum measurements. In our approach, it suffices to probe the detector with a vacuum state and two different thermal states to test its quantum non-Gaussianity. The certification is experimentally demonstrated for the detector formed by a spatially multiplexed array of ten single-photon avalanche photodiodes. We confirm the quantum non-Gaussianity of POVM elements (Pi) over cap (m) associated with the m-fold coincidence counts, up to m= 7. The experimental ability to certify from the first principles the quantum nonGaussian character of (Pi) over cap (m) is for large m limited by low probability of the measurement outcomes, especially for vacuum input state. We find that the injection of independent Gaussian background noise into the detector can be helpful and may reduce the measurement time required for reliable confirmation of quantum non-Gaussianity. In addition, we modified and experimentally verified the quantum non-Gaussianity certification protocol employing a third thermal state instead of a vacuum to speed up the whole measurement. Our findings demonstrate the existence of efficient tools for the practical characterization of fundamental non-classical properties and benchmarking of complex optical quantum detectors. (C) 2022 Optica Publishing Group under the terms of the Optica Open Access Publishing Agreement
引用
收藏
页码:33097 / 33111
页数:15
相关论文
共 50 条
  • [21] Degree of quantum non-Gaussianity in a spin
    Qiang Zheng
    Qi-jun Zhi
    The European Physical Journal D, 2023, 77
  • [22] Photon number projection using non-number-resolving detectors
    Rohde, Peter P.
    Webb, James G.
    Huntington, Elanor H.
    Ralph, Timothy C.
    NEW JOURNAL OF PHYSICS, 2007, 9
  • [23] Quantum non-Gaussianity witnesses in phase space
    Hughes, Catherine
    Genoni, Marco G.
    Tufarelli, Tommaso
    Paris, Matteo G. A.
    Kim, M. S.
    PHYSICAL REVIEW A, 2014, 90 (01):
  • [24] Photon-number resolving detectors
    Haderka, O.
    Perina, J., Jr.
    Hamar, M.
    Michalek, V.
    Cernoch, A.
    Soubusta, J.
    17TH SLOVAK-CZECH-POLISH OPTICAL CONFERENCE ON WAVE AND QUANTUM ASPECTS OF CONTEMPORARY OPTICS, 2010, 7746
  • [25] Benchmarking photon number resolving detectors
    Provaznik, Jan
    Lachman, Lukas
    Filip, Radim
    Marek, Petr
    OPTICS EXPRESS, 2020, 28 (10) : 14839 - 14849
  • [26] Non-Gaussianity as a Signature of a Quantum Theory of Gravity
    Howl, Richard
    Vedral, Vlatko
    Naik, Devang
    Christodoulou, Marios
    Rovelli, Carlo
    Iyer, Aditya
    PRX QUANTUM, 2021, 2 (01):
  • [27] Quantum tomography of light states by photon-number-resolving detectors
    Olivares, Stefano
    Allevi, Alessia
    Caiazzo, Giovanni
    Paris, Matteo G. A.
    Bondani, Maria
    NEW JOURNAL OF PHYSICS, 2019, 21 (10):
  • [28] Photon-number-resolving detectors and their role in quantifying quantum correlations
    Tana, Si -Hui
    Krivitsky, Leonid A.
    Englert, Berthold-Georg
    QUANTUM COMMUNICATIONS AND QUANTUM IMAGING XIV, 2016, 9980
  • [29] Computation of non-Gaussianity in loop quantum cosmology
    Sreenath, Vijayakumar
    Agullo, Ivan
    Bolliet, Boris
    15TH MARCEL GROSSMANN MEETING, PT A, 2022, : 2035 - 2040
  • [30] Nonclassicality versus quantum non-Gaussianity of photon-subtracted displaced Fock state
    Deepak
    Chatterjee, Arpita
    CANADIAN JOURNAL OF PHYSICS, 2023, 101 (10) : 560 - 572