Measurement of entropy and quantum coherence properties of two type-I entangled photonic qubits

被引:0
|
作者
Ali Motazedifard
Seyed Ahmad Madani
N. S. Vayaghan
机构
[1] Quantum Optics Group,
[2] Iranian Center for Quantum Technologies (ICQTs),undefined
[3] Quantum Communication Group,undefined
[4] Iranian Center for Quantum Technologies (ICQTs),undefined
[5] Quantum Sensing and Metrology Group,undefined
[6] Iranian Center for Quantum Technologies (ICQTs),undefined
来源
关键词
Spontaneous parametric down-conversion (SPDC); Polarization-entanglement; Quantum state tomography (QST); Entropy;
D O I
暂无
中图分类号
学科分类号
摘要
Using the type-I SPDC process in BBO nonlinear crystal, we generate a polarization-entangled state near to the maximally-entangled Bell-state with high-visibility (high-brightness) 98.50 ± 1.33% (87.71 ± 4.45%) for HV (DA) basis. We calculate the CHSH version of the Bell inequality, as a nonlocal realism test, and find a strong violation from the classical physics or any hidden variable theory, S = 2.71 ± 0.10. Via measuring the coincidence count rate in the SPDC process, we obtain the quantum efficiency of single-photon detectors around (25.5 ± 3.4)%, which is in good agreement to their manufacturer company. As expected, we verify the linear dependency of the CC rate vs. pump power of input CW-laser, which may yield to find the effective second-order susceptibility crystal. Using the theory of the measurement of qubits, includes a tomographic reconstruction of quantum states due to the linear set of 16 polarization-measurement, together with a maximum-likelihood-technique, which is based on the numerical optimization, we calculate the physical non-negative definite density matrices, which implies on the non-separability and entanglement of prepared state. By having the maximum likelihood density operator, we calculate precisely the entanglement measures such as Concurrence, entanglement of formation, tangle, logarithmic negativity, and different entanglement entropies such as linear entropy, Von-Neumann entropy, and Renyi 2-entropy. Finally, this high-brightness and low-rate entangled photons source can be used for short-range quantum measurements in the Lab.
引用
收藏
相关论文
共 50 条
  • [21] Quantum coherence and nonlocality of two qubits in the presence of a common dephasing environment
    Berrada, K.
    Sabik, A.
    Eleuch, H.
    RESULTS IN PHYSICS, 2023, 51
  • [22] Quantum Zeno stabilization in weak continuous measurement of two qubits
    Ruskov, R
    Korotkov, AN
    Mizel, A
    PHYSICAL REVIEW B, 2006, 73 (08)
  • [23] Extracting entangled qubits from Majorana fermions in quantum dot chains through the measurement of parity
    Li Dai
    Watson Kuo
    Ming-Chiang Chung
    Scientific Reports, 5
  • [24] Extracting entangled qubits from Majorana fermions in quantum dot chains through the measurement of parity
    Dai, Li
    Kuo, Watson
    Chung, Ming-Chiang
    SCIENTIFIC REPORTS, 2015, 5
  • [25] Optical properties of type-I PbSe/CdSe core/shell quantum dot
    Saravanamoorthy, S. N.
    Peter, A. John
    Lee, Chang Woo
    PHYSICA B-CONDENSED MATTER, 2015, 466 : 101 - 106
  • [26] Quantum coherence and quantum correlation of two qubits mediated by a one-dimensional plasmonic waveguide
    Hu, Zheng-Da
    Liang, Xiuye
    Wang, Jicheng
    Zhang, Yixin
    OPTICS EXPRESS, 2016, 24 (10): : 10817 - 10828
  • [27] Photonic Crystal Surface Emitting GaSb-Based Type-I Quantum Well Diode Lasers
    Shterengas, Leon
    Kipshidze, Gela
    Stein, Aaron
    Lee, Won Jae
    Liu, Ruyan
    Belenky, Gregory
    IEEE JOURNAL OF SELECTED TOPICS IN QUANTUM ELECTRONICS, 2025, 31 (02)
  • [28] STATISTICAL PROPERTIES OF TYPE-I INTERMITTENCY
    BUSSAC, MN
    MEUNIER, C
    JOURNAL DE PHYSIQUE, 1982, 43 (04): : 585 - 589
  • [29] Quantum confinement of carriers in the type-I quantum wells structure
    李欣欣
    邓震
    江洋
    杜春花
    贾海强
    王文新
    陈弘
    Chinese Physics B, 2024, 33 (09) : 557 - 562
  • [30] Properties of quantum coherence and correlations in quasi-entangled coherent states
    Asad Ali
    Mustansar Nadeem
    A. H. Toor
    The European Physical Journal D, 2021, 75