English

Towards Canonical Quantum Gravity for G1 Geometries in 2+1 Dimensions with a Lambda--Term

General Relativity and Quantum Cosmology 2009-01-07 v2 High Energy Physics - Theory Mathematical Physics math.MP

Abstract

The canonical analysis and subsequent quantization of the (2+1)-dimensional action of pure gravity plus a cosmological constant term is considered, under the assumption of the existence of one spacelike Killing vector field. The proper imposition of the quantum analogues of the two linear (momentum) constraints reduces an initial collection of state vectors, consisting of all smooth functionals of the components (and/or their derivatives) of the spatial metric, to particular scalar smooth functionals. The demand that the midi-superspace metric (inferred from the kinetic part of the quadratic (Hamiltonian) constraint) must define on the space of these states an induced metric whose components are given in terms of the same states, which is made possible through an appropriate re-normalization assumption, severely reduces the possible state vectors to three unique (up to general coordinate transformations) smooth scalar functionals. The quantum analogue of the Hamiltonian constraint produces a Wheeler-DeWitt equation based on this reduced manifold of states, which is completely integrated.

Keywords

Cite

@article{arxiv.0806.0137,
  title  = {Towards Canonical Quantum Gravity for G1 Geometries in 2+1 Dimensions with a Lambda--Term},
  author = {T. Christodoulakis and G. Doulis and Petros A Terzis and E. Melas and Th. Grammenos and G. O. Papadopoulos and A. Spanou},
  journal= {arXiv preprint arXiv:0806.0137},
  year   = {2009}
}

Comments

Latex 2e source file, 25 pages, no figures, final version (accepted in CQG)

R2 v1 2026-06-21T10:46:14.703Z