Published July 1, 2011 | Version v1
Journal article

Magnetic monopole plasma phase in (2+1)d compact quantum electrodynamics with fermionic matter

  • 1. Institute for the Future of Computing, Oxford Martin School, Oxford e-Research Center, 7 Keble Road, Oxford OX1 3QG (United Kingdom)
  • 2. Diamond Light Source, Harwell Campus, Didcot, Oxfordshire OX11 0DE (United Kingdom)
  • 3. Department of Physics, College of Science, Swansea University, Singleton Park, Swansea SA2 8PP (United Kingdom)
  • 4. Department of Physics, University of Maryland, 82 Regents Drive, College Park, Maryland 20742 (United States)
  • 5. Department of Energy, Division of High Energy Physics, Washington, D.C. 20585 (United States)
  • 6. Computation-based Science and Technology Research Center, The Cyprus Institute, 1645 Nicosia (Cyprus)
  • 7. Lawrence Livermore National Laboratory, Livermore, California 94550 (United States)

Description

We present the first evidence from lattice simulations that the magnetic monopoles in three-dimensional compact quantum electrodynamics (cQED3) with Nf=2 and Nf=4 four-component fermion flavors are in a plasma phase. The evidence is based mainly on the divergence of the monopole susceptibility (polarizability) with the lattice size at weak gauge couplings. A weak four-Fermi term added to the cQED3 action enabled simulations with massless fermions. The exact chiral symmetry of the interaction terms forbids symmetry breaking lattice discretization counterterms to appear in the theory's effective action. It is also shown that the scenario of a monopole plasma does not depend on the strength of the four-Fermi coupling. Other observables such as the densities of isolated dipoles and monopoles and the so-called specific heat show that a crossover from a dense monopole plasma to a dilute monopole gas occurs at strong couplings. The implications of our results on the stability of U(1) spin liquids in two spatial dimensions are also discussed.

Additional details

Publishing Information

Journal Title
Physical Review. D, Particles Fields
Journal Volume
84
Journal Issue
1
Journal Page Range
p. 014502-014502.11
ISSN
0556-2821
CODEN
PRVDAQ

Optional Information

Notes
(c) 2011 American Institute of Physics