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Simulating Compact Quantum Electrodynamics with ultracold atoms: Probing confinement and nonperturbative effects

Quantum Physics 2013-05-30 v2 Quantum Gases High Energy Physics - Theory

Abstract

Recently, there has been much interest in simulating quantum field theory effects of matter and gauge fields. In a recent work [Phys. Rev. Lett. 107, 275301 (2011)] a method for simulating compact Quantum Electrodynamics (cQED) using Bose-Einstein condensates has been suggested. We suggest an alternative approach, which relies on single atoms in an optical lattice, carrying 2l+1 internal levels, which converges rapidly to cQED as l increases. That enables the simulation of cQED in 2+1 dimensions in both the weak and the strong coupling regimes, hence allowing to probe confinement as well as other nonperturbative effects of the theory. We provide an explicit construction for the case l=1 which is sufficient for simulating the effect of confinement between two external static charges.

Keywords

Cite

@article{arxiv.1204.6574,
  title  = {Simulating Compact Quantum Electrodynamics with ultracold atoms: Probing confinement and nonperturbative effects},
  author = {Erez Zohar and J. Ignacio Cirac and Benni Reznik},
  journal= {arXiv preprint arXiv:1204.6574},
  year   = {2013}
}

Comments

Supplementary material addeed

R2 v1 2026-06-21T20:56:28.648Z