Spontaneous breaking of the rotational symmetry in dimensionally reduced super Yang-Mills models
Tatsumi Aoyama, Jun Nishimura, Toshiyuki Okubo

TL;DR
This paper studies the spontaneous breaking of rotational symmetry in dimensionally reduced super Yang-Mills models, revealing a universal pattern of symmetry breaking and space-time structure that supports the IIB matrix model as a non-perturbative string theory formulation.
Contribution
It provides a detailed analysis of symmetry breaking in D=6 super Yang-Mills models, offering new insights and quantitative predictions relevant to the IIB matrix model and space-time emergence.
Findings
SO(6) symmetry breaks to SO(3) in the model
The extent of shrunken directions is nearly universal
Results are consistent with low-energy effective theory predictions
Abstract
We investigate the spontaneous breaking of the SO(D) symmetry in matrix models, which can be obtained by the zero-volume limit of pure SU(N) super Yang-Mills theory in D = 6, 10 dimensions. The D = 10 case corresponds to the IIB matrix model, which was proposed as a non-perturbative formulation of type IIB superstring theory, and the spontaneous breaking corresponds to the dynamical compactification of space-time suggested in that model. First we study the D = 6 case by the Gaussian expansion method, which turns out to yield clearer results than the previous results for the D = 10 case for certain technical reasons. By comparing the free energy of the SO(d) symmetric vacua for d = 2, 3, 4, 5, we conclude that the breaking SO(6) \to SO(3) actually occurs. We find that the extent of space-time in the shrunken directions is almost independent of d. In units of this universal scale, the…
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