English

$q$-deformed 3D Loop Gravity on the Torus

High Energy Physics - Theory 2020-01-29 v1 Mathematical Physics math.MP

Abstract

The qq-deformed loop gravity framework was introduced as a canonical formalism for the Turaev-Viro model (with Λ<0\Lambda < 0), allowing to quantize 3D Euclidean gravity with a (negative) cosmological constant using a quantum deformation of the gauge group. We describe its application to the 2-torus, explicitly writing the qq-deformed gauge symmetries and deriving the reduced physical phase space of Dirac observables, which leads back to the Goldman brackets for the moduli space of flat connections. Furthermore it turns out that the qq-deformed loop gravity can be derived through a gauge fixing from the Fock-Rosly bracket, which provides an explicit link between loop quantum gravity (for qq real) and the combinatorial quantization of 3d gravity as a Chern-Simons theory with non-vanishing cosmological constant Λ<0\Lambda<0. A side-product is the reformulation of the loop quantum gravity phase space for vanishing cosmological constant Λ=0\Lambda=0, based on SU(2)\mathrm{SU}(2) holonomies and su(2)\mathfrak{su}(2) fluxes, in terms of ISU(2)\mathrm{ISU}(2) Poincar\'e holonomies. Although we focus on the case of the torus as an example, our results outline the general equivalence between 3D qq-deformed loop quantum gravity and the combinatorial quantization of Chern-Simons theory for arbitrary graph and topology.

Keywords

Cite

@article{arxiv.1907.11074,
  title  = {$q$-deformed 3D Loop Gravity on the Torus},
  author = {Maïté Dupuis and Etera R. Livine and Qiaoyin Pan},
  journal= {arXiv preprint arXiv:1907.11074},
  year   = {2020}
}

Comments

26 pages, 12 figures

R2 v1 2026-06-23T10:30:47.405Z