The spectrum of 2+1 dimensional Yang-Mills theory on a twisted spatial torus

Author:

Pérez Margarita García,González-Arroyo AntonioORCID,Koren Mateusz,Okawa Masanori

Abstract

Abstract We compute and analyse the low-lying spectrum of 2+1 dimensional SU(N) Yang-Mills theory on a spatial torus of size l × l with twisted boundary conditions. This paper extends our previous work [1]. In that paper we studied the sector with non-vanishing electric flux and concluded that the energies only depend on the parameters through two combinations: x = λN l/(4π) (with λ the ’t Hooft coupling) and the twist angle $$ \tilde{\theta} $$ θ ˜ defined in terms of the magnetic flux piercing the two-dimensional box. Here we made a more complete study and we are able to condense our results, obtained by non-perturbative lattice methods, into a simple expression which has important implications for the absence of tachyonic instabilities, volume independence and non-commutative field theory. Then we extend our study to the sector of vanishing electric flux. We conclude that the onset of the would-be large-volume glueball states occurs at an approximately fixed value of x, much before the stringy torelon states have become very massive.

Publisher

Springer Science and Business Media LLC

Subject

Nuclear and High Energy Physics

Reference51 articles.

1. M. García Pérez, A. González-Arroyo and M. Okawa, Spatial volume dependence for 2 + 1 dimensional SU(N) Yang-Mills theory, JHEP 09 (2013) 003 [arXiv:1307.5254] [INSPIRE].

2. M. García Pérez, A. González-Arroyo and M. Okawa, Volume independence for Yang-Mills fields on the twisted torus, Int. J. Mod. Phys. A 29 (2014) 1445001 [arXiv:1406.5655] [INSPIRE].

3. M. García Pérez, A. González-Arroyo, M. Koren and M. Okawa, Glueball masses in 2 + 1 dimensional SU(N ) gauge theories with twisted boundary conditions, PoS(LATTICE2014)059 [arXiv:1411.5186] [INSPIRE].

4. T. Eguchi and H. Kawai, Reduction of dynamical degrees of freedom in the large N gauge theory, Phys. Rev. Lett. 48 (1982) 1063 [INSPIRE].

5. G. Bhanot, U.M. Heller and H. Neuberger, The quenched Eguchi-Kawai model, Phys. Lett. B 113 (1982) 47 [INSPIRE].

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