English

Euclidean LQG Dynamics: An Electric Shift in Perspective

General Relativity and Quantum Cosmology 2021-07-07 v1 High Energy Physics - Theory

Abstract

Loop Quantum Gravity (LQG) is a non-perturbative attempt at quantization of a classical phase space description of gravity in terms of SU(2)SU(2) connections and electric fields. As emphasized recently [1], on this phase space, classical gravitational evolution in timetime can be understood in terms of certain gauge covariant generalizations of Lie derivatives with respect to a spatialspatial SU(2)SU(2) Lie algebra valued vector field called the Electric Shift. We present a derivation of a quantum dynamics for Euclidean LQG which is informed by this understanding. In addition to the physically motivated nature of the action of the Euclidean Hamiltonian constraint so derived, the derivation implies that the spin labels of regulating holonomies are determined by corresponding labels of the spin network state being acted upon thus eliminating the `spin jj-ambiguity' pointed out by Perez. By virtue of Thiemann's seminal work, the Euclidean quantum dynamics plays a crucial role in the construction of the Lorentzian quantum dynamics so that our considerations also have application to Lorentzian LQG.

Keywords

Cite

@article{arxiv.2101.03115,
  title  = {Euclidean LQG Dynamics: An Electric Shift in Perspective},
  author = {Madhavan Varadarajan},
  journal= {arXiv preprint arXiv:2101.03115},
  year   = {2021}
}

Comments

37 pages, 7 figures

R2 v1 2026-06-23T21:55:32.968Z