Exploring Cartan gravity with dynamical symmetry breaking
H.F. Westman, T.G. Zlosnik

TL;DR
This paper develops a dynamical Cartan gravity framework with symmetry breaking, treating both gauge and Higgs fields as dynamical, leading to models including scalar-tensor theories, quintessence, and propagating torsion.
Contribution
It introduces polynomial actions where the Higgs field and gauge connection are dynamical, resulting in new scalar-tensor gravity models and extensions of Chern-Simons and Euler form gravity.
Findings
Derivation of first-order PDEs for dynamical fields.
Reduction to second-order scalar-tensor models.
Identification of models with positive cosmological constant and propagating torsion.
Abstract
It has been known for some time that General Relativity can be regarded as a Yang-Mills-type gauge theory in a symmetry broken phase. In this picture the gravity sector is described by an or gauge field and Higgs field which acts to break the symmetry down to that of the Lorentz group . This symmetry breaking mirrors that of electroweak theory. However, a notable difference is that while the Higgs field of electroweak theory is taken as a genuine dynamical field satisfying a Klein-Gordon equation, the gauge independent norm of the Higgs-type field is typically regarded as non-dynamical. Instead, in many treatments does not appear explicitly in the formalism or is required to satisfy by means of a Lagrangian constraint. As an alternative to this…
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