Cavity quantum electrodynamics with a Rydberg-blocked atomic ensemble

被引:68
|
作者
Guerlin, Christine [1 ,4 ]
Brion, Etienne [2 ]
Esslinger, Tilman [1 ]
Molmer, Klaus [3 ]
机构
[1] ETH, Inst Quantum Elect, CH-8093 Zurich, Switzerland
[2] CNRS, Aime Cotton Lab, F-91405 Orsay, France
[3] Univ Aarhus, Lundbeck Fdn Theoret Ctr Quantum Syst Res, Dept Phys & Astron, DK-8000 Aarhus, Denmark
[4] Thales Res & Technol, F-91767 Palaiseau, France
来源
PHYSICAL REVIEW A | 2010年 / 82卷 / 05期
关键词
All Open Access; Green;
D O I
10.1103/PhysRevA.82.053832
中图分类号
O43 [光学];
学科分类号
070207 ; 0803 ;
摘要
The realization of a Jaynes-Cummings model in the optical domain is proposed for an atomic ensemble. The scheme exploits the collective coupling of the atoms to a quantized cavity mode and the nonlinearity introduced by coupling to high-lying Rydberg states. A two-photon transition resonantly couples the single-atom ground state |g > to a Rydberg state |e > via a nonresonant intermediate state |i >, but due to the interaction between Rydberg atoms only a single atom can be resonantly excited in the ensemble. This restricts the state space of the ensemble to the collective ground state |G > and the collectively excited state |E > with a single Rydberg excitation distributed evenly on all atoms. The collectively enhanced coupling of all atoms to the cavity field with coherent coupling strengths which are much larger than the decay rates in the system leads to the strong coupling regime of the resulting effective Jaynes-Cummings model. We use numerical simulations to show that the cavity transmission can be used to reveal detailed properties of the Jaynes-Cummings ladder of excited states and that the atomic nonlinearity gives rise to highly nontrivial photon emission from the cavity. Finally, we suggest that the absence of interactions between remote Rydberg atoms may, due to a combinatorial effect, induce a cavity-assisted excitation blockade whose range is larger than the typical Rydberg dipole-dipole interaction length.
引用
收藏
页数:8
相关论文
共 50 条
  • [1] Quantum repeater with Rydberg-blocked atomic ensembles in fiber-coupled cavities
    Brion, E.
    Carlier, F.
    Akulin, V. M.
    Molmer, K.
    [J]. PHYSICAL REVIEW A, 2012, 85 (04):
  • [2] Analysis of atom-photon quantum interface with intracavity Rydberg-blocked atomic ensemble via two-photon transition
    Sun, Yuan
    Chen, Ping-Xing
    [J]. OPTICA, 2018, 5 (12): : 1492 - 1501
  • [3] Atomic fractals in cavity quantum electrodynamics
    Prants, SV
    Uleysky, MY
    [J]. PHYSICS LETTERS A, 2003, 309 (5-6) : 357 - 362
  • [4] The 2-level Rydberg atom: The electron of cavity quantum electrodynamics
    Bullough, RK
    [J]. ELECTRON, 1998, : 289 - 292
  • [5] Collective cavity quantum electrodynamics with multiple atomic levels
    Arnold, Kyle J.
    Baden, Markus P.
    Barrett, Murray D.
    [J]. PHYSICAL REVIEW A, 2011, 84 (03):
  • [6] Teleportation of atomic states via cavity quantum electrodynamics
    Guerra, ES
    [J]. OPTICS COMMUNICATIONS, 2004, 242 (4-6) : 541 - 549
  • [7] Atomic Talbot interferometry as a sensitive tool for cavity quantum electrodynamics
    Rohwedder, B
    Santos, MF
    [J]. PHYSICAL REVIEW A, 2000, 61 (02): : 9
  • [8] Atomic Talbot interferometry as a sensitive tool for cavity quantum electrodynamics
    Rohwedder, B.
    Franca, Santos, M.
    [J]. Physical Review A - Atomic, Molecular, and Optical Physics, 2000, 61 (02): : 236011 - 236019
  • [9] Dynamic properties of atomic collective decay in cavity quantum electrodynamics
    韩玉峰
    朱成杰
    黄仙山
    羊亚平
    [J]. Chinese Physics B, 2018, 27 (12) : 308 - 314
  • [10] Correlation of Dirac potentials and atomic inversion in cavity quantum electrodynamics
    Trisetyarso, Agung
    [J]. JOURNAL OF MATHEMATICAL PHYSICS, 2010, 51 (07)