English

Large-N volume independence in conformal and confining gauge theories

High Energy Physics - Theory 2014-11-21 v2 High Energy Physics - Lattice High Energy Physics - Phenomenology

Abstract

Consequences of large NN volume independence are examined in conformal and confining gauge theories. In the large NN limit, gauge theories compactified on Rdk×(S1)k\R^{d-k} \times (S^1)^k are independent of the S1S^1 radii, provided the theory has unbroken center symmetry. In particular, this implies that a large NN gauge theory which, on Rd\R^d, flows to an IR fixed point, retains the infinite correlation length and other scale invariant properties of the decompactified theory even when compactified on Rdk×(S1)k\R^{d-k} \times (S^1)^k. In other words, finite volume effects are 1/N1/N suppressed. In lattice formulations of vector-like theories, this implies that numerical studies to determine the boundary between confined and conformal phases may be performed on one-site lattice models. In N=4N=4 supersymmetric Yang-Mills theory, the center symmetry realization is a matter of choice: the theory on R4k×(S1)k\R^{4-k}\times (S^1)^k has a moduli space which contains points with all possible realizations of center symmetry. Large NN QCD with massive adjoint fermions and one or two compactified dimensions has a rich phase structure with an infinite number of phase transitions coalescing in the zero radius limit.

Keywords

Cite

@article{arxiv.1006.2101,
  title  = {Large-N volume independence in conformal and confining gauge theories},
  author = {Mithat Unsal and Laurence G. Yaffe},
  journal= {arXiv preprint arXiv:1006.2101},
  year   = {2014}
}

Comments

24 pages, added ref