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Large-NcN_c gauge theory and chiral random matrix theory

Abstract

We discuss how the 1/Nc1/N_c expansion and the chiral random matrix theory (χ\chiRMT) can be used in the study of large-NcN_c gauge theories. We first clarify the parameter region in which each of these two approaches is valid: while the fermion mass mm is fixed in the standard large-NcN_c arguments ('t Hooft large-NcN_c limit), mm must be scaled appropriately with a certain negative power of NcN_c in order for the gauge theories to be described by the χ\chiRMT. Then, although these two limits are not compatible in general, we show that the breakdown of chiral symmetry can be detected by combining the large-NcN_c argument and the χ\chiRMT with some cares. As a concrete example, we numerically study the four dimensional SU(Nc)SU(N_c) gauge theory with Nf=2N_f=2 heavy adjoint fermions, introduced as the center symmetry preserver keeping the infrared physics intact, on a 242^4 lattice. By looking at the low-lying eigenvalues of the Dirac operator for a massless probe fermion in the adjoint representation, we find that the chiral symmetry is indeed broken with the expected breaking pattern. This result reproduces a well-known fact that the chiral symmetry is spontaneously broken in the pure SU(Nc)SU(N_c) gauge theory in the large-NcN_c and the large-volume limit, and therefore supports the validity of the combined approach. We also provide the interpretation of the gap and unexpected NcN_c-scaling, both of which are observed in the Dirac spectrum.Comment: 26 pages, 15 figure

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