(2+1) Lorentzian quantum cosmology from spin-foams: opportunities and obstacles for semi-classicality
Alexander F. Jercher, Jos\'e Diogo Sim\~ao, Sebastian Steinhaus

TL;DR
This paper develops a (2+1) Lorentzian quantum cosmology model using spin-foams, analyzing semi-classicality, causality, and the effects of a scalar field, providing insights into quantum gravitational dynamics and potential cosmological scenarios.
Contribution
It introduces an effective spin-foam cosmological model with a scalar field, analyzing semi-classical behavior and causality issues in a discretized (2+1) Lorentzian universe.
Findings
Expectation values align with classical solutions for certain configurations.
Causality violations occur when space-like struts are included.
Scalar field mass influences the convergence and behavior of the partition function.
Abstract
We construct an effective cosmological spin-foam model for a (2+1) dimensional spatially flat universe, discretized on a hypercubical lattice, containing both space- and time-like regions. Our starting point is the recently proposed coherent state spin-foam model for (2+1) Lorentzian quantum gravity. The full amplitude is assumed to factorize into single vertex amplitudes with boundary data corresponding to Lorentzian 3-frusta. A stationary phase approximation is performed at each vertex individually, where the inverse square root of the Hessian determinant serves as a measure for the effective path integral. Additionally, a massive scalar field is coupled to the geometry, and we show that its mass renders the partition function convergent. For a single 3-frustum with time-like struts, we compute the expectation value of the bulk strut length and show that it generically agrees with the…
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Taxonomy
TopicsNoncommutative and Quantum Gravity Theories · Black Holes and Theoretical Physics · Cosmology and Gravitation Theories
