English

Gauge Theories with Time Dependent Couplings and their Cosmological Duals

High Energy Physics - Theory 2009-08-03 v3

Abstract

We consider the N=4 SYM theory in flat 3+1 dimensional spacetime with a time dependent coupling constant which vanishes at t=0t=0, like gYM2=tpg_{YM}^2=t^p. In an analogous quantum mechanics toy model we find that the response is singular. The energy diverges at t=0t=0, for a generic state. In addition, if p>1p>1 the phase of the wave function has a wildly oscillating behavior, which does not allow it to be continued past t=0t=0. A similar effect would make the gauge theory singular as well, though nontrivial effects of renormalization could tame this singularity and allow a smooth continuation beyond t=0t=0. The gravity dual in some cases is known to be a time dependent cosmology which exhibits a space-like singularity at t=0t=0. Our results, if applicable in the gauge theory for the case of the vanishing coupling, imply that the singularity is a genuine sickness and does not admit a meaningful continuation. When the coupling remains non-zero and becomes small at t=0t=0, the curvature in the bulk becomes of order the string scale. The gauge theory now admits a time evolution beyond this point. In this case, a finite amount of energy is produced which possibly thermalizes and leads to a black hole in the bulk.

Keywords

Cite

@article{arxiv.0807.1517,
  title  = {Gauge Theories with Time Dependent Couplings and their Cosmological Duals},
  author = {Adel Awad and Sumit R. Das and Suresh Nampuri and K. Narayan and Sandip P. Trivedi},
  journal= {arXiv preprint arXiv:0807.1517},
  year   = {2009}
}

Comments

45 pages, 1 figure; v2. minor modifications; v3: PRD version, conclusions in the field theory case significantly revised to include possible renormalization effects, quantum mechanics toy model unchanged, abstract and introduction revised, additional subsection 4.1 added