Three-dimensional light-matter interface for collective spin squeezing in atomic ensembles

被引:21
|
作者
Baragiola, Ben Q. [1 ]
Norris, Leigh M. [1 ]
Montano, Enrique [2 ]
Mickelson, Pascal G. [2 ]
Jessen, Poul S. [2 ]
Deutsch, Ivan H. [1 ]
机构
[1] Univ New Mexico, Ctr Quantum Informat & Control, Albuquerque, NM 87131 USA
[2] Univ Arizona, Ctr Quantum Informat & Control, Tucson, AZ 85721 USA
来源
PHYSICAL REVIEW A | 2014年 / 89卷 / 03期
基金
美国国家科学基金会;
关键词
QUANTUM MEMORY; ENTANGLEMENT; SCATTERING; SPECTROSCOPY; PROPAGATION;
D O I
10.1103/PhysRevA.89.033850
中图分类号
O43 [光学];
学科分类号
070207 ; 0803 ;
摘要
We study the three-dimensional nature of the quantum interface between an ensemble of cold, trapped atomic spins and a paraxial laser beam, coupled through a dispersive interaction. To achieve strong entanglement between the collective atomic spin and the photons, one must match the spatial mode of the collective radiation of the ensemble with the mode of the laser beam while minimizing the effects of decoherence due to optical pumping. For ensembles coupling to a probe field that varies over the extent of the cloud, the set of atoms that indistinguishably radiates into a desired mode of the field defines an inhomogeneous spin wave. Strong coupling of a spin wave to the probe mode is not characterized by a single parameter, the optical density, but by a collection of different effective atom numbers that characterize the coherence and decoherence of the system. To model the dynamics of the system, we develop a full stochastic master equation, including coherent collective scattering into paraxial modes, decoherence by local inhomogeneous diffuse scattering, and backaction due to continuous measurement of the light entangled with the spin waves. This formalism is used to study the squeezing of a spin wave via continuous quantum nondemolition measurement. We find that the greatest squeezing occurs in parameter regimes where spatial inhomogeneities are significant, far from the limit in which the interface is well approximated by a one-dimensional, homogeneous model.
引用
收藏
页数:22
相关论文
共 50 条
  • [41] Squeezing a sponge: a three-dimensional solution in poroelasticity
    Kaasschieter, EF
    Frijns, AJH
    [J]. COMPUTATIONAL GEOSCIENCES, 2003, 7 (01) : 49 - 59
  • [42] Three-dimensional mixed convection squeezing flow
    T. Hayat
    A. Qayyum
    A. Alsaedi
    [J]. Applied Mathematics and Mechanics, 2015, 36 : 47 - 60
  • [43] Three-dimensional mixed convection squeezing flow
    T.HAYAT
    A.QAYYUM
    A.ALSAEDI
    [J]. Applied Mathematics and Mechanics(English Edition), 2015, 36 (01) : 47 - 60
  • [44] Mechanism of Molecular Polariton Decoherence in the Collective Light-Matter Couplings Regime
    Chng, Benjamin X. K.
    Ying, Wenxiang
    Lai, Yifan
    Vamivakas, A. Nickolas
    Cundiff, Steven T.
    Krauss, Todd D.
    Huo, Pengfei
    [J]. Journal of Physical Chemistry Letters, 2024, 15 (47): : 11773 - 11783
  • [45] Enhanced optical nonlinearities under collective strong light-matter coupling
    Ribeiro, Raphael F.
    Campos-Gonzalez-Angulo, Jorge A.
    Giebink, Noel C.
    Xiong, Wei
    Yuen-Zhou, Joel
    [J]. PHYSICAL REVIEW A, 2021, 103 (06)
  • [46] Nodes and Spin Windings for Topological Transitions in Light-Matter Interactions
    Ying, Zu-Jian
    [J]. ADVANCED QUANTUM TECHNOLOGIES, 2023, 6 (07)
  • [47] Focusing characteristics of a 4π parabolic mirror light-matter interface
    Alber, Lucas
    Fischer, Martin
    Bader, Marianne
    Mantel, Klaus
    Sondermann, Markus
    Leuchs, Gerd
    [J]. JOURNAL OF THE EUROPEAN OPTICAL SOCIETY-RAPID PUBLICATIONS, 2017, 13
  • [48] Spin squeezing by one-photon-two-atom excitation processes in atomic ensembles
    Macri, Vincenzo
    Nori, Franco
    Savasta, Salvatore
    Zueco, David
    [J]. PHYSICAL REVIEW A, 2020, 101 (05)
  • [49] Spin-orbit interaction of light in three-dimensional microcavities
    Kreismann, Jakob
    Hentschel, Martina
    [J]. PHYSICAL REVIEW A, 2020, 102 (04)
  • [50] Three-dimensional spin Hall effect of light in tight focusing
    Shu, Weixing
    Lin, Chuyang
    Wu, Jun
    Chen, Shizhen
    Ling, Xiaohui
    Zhou, Xinxing
    Luo, Hailu
    Wen, Shuangchun
    [J]. PHYSICAL REVIEW A, 2020, 101 (02)