English

De Donder-Weyl Hamiltonian formalism of MacDowell-Mansouri gravity

General Relativity and Quantum Cosmology 2019-03-07 v2 High Energy Physics - Theory Mathematical Physics math.MP

Abstract

We analyse the behaviour of the MacDowell-Mansouri action with internal symmetry group SO(4,1)\mathrm{SO}(4,1) under the covariant Hamiltonian formulation. The field equations, known in this formalism as the De Donder-Weyl equations, are obtained by means of the graded Poisson-Gerstenhaber bracket structure present within the covariant formulation. The decomposition of the internal algebra so(4,1)so(3,1)R3,1\mathfrak{so}(4,1)\simeq\mathfrak{so}(3,1)\oplus\mathbb{R}^{3,1} allows the symmetry breaking SO(4,1)SO(3,1)\mathrm{SO}(4,1)\to\mathrm{SO}(3,1), which reduces the original action to the Palatini action without the topological term. We demonstrate that, in contrast to the Lagrangian approach, this symmetry breaking can be performed indistinctly in the covariant Hamiltonian formalism either before or after the variation of the De Donder-Weyl Hamiltonian has been done, recovering Einstein's equations via the Poisson-Gerstenhaber bracket.

Keywords

Cite

@article{arxiv.1703.09755,
  title  = {De Donder-Weyl Hamiltonian formalism of MacDowell-Mansouri gravity},
  author = {Jasel Berra-Montiel and Alberto Molgado and David Serrano-Blanco},
  journal= {arXiv preprint arXiv:1703.09755},
  year   = {2019}
}

Comments

14 pages, no figures, published version