Quantum Nature of the Big Bang: Improved dynamics
Abhay Ashtekar, Tomasz Pawlowski, Parampreet Singh
Abstract
An improved Hamiltonian constraint operator is introduced in loop quantum cosmology. Quantum dynamics of the spatially flat, isotropic model with a massless scalar field is then studied in detail using analytical and numerical methods. The scalar field continues to serve as `emergent time', the big bang is again replaced by a quantum bounce, and quantum evolution remains deterministic across the deep Planck regime. However, while with the Hamiltonian constraint used so far in loop quantum cosmology the quantum bounce can occur even at low matter densities, with the new Hamiltonian constraint it occurs only at a Planck-scale density. Thus, the new quantum dynamics retains the attractive features of current evolutions in loop quantum cosmology but, at the same time, cures their main weakness.
Create a lesson
Related papers
Black hole correspondences of quasi-topological gravity : Shadows, quasinormal modes, graybody factors
Sihao Fan, Chen Wu, Wenjun Guo
Spacelike reduction of the gravitational topological terms and associated helicity densities
Hongxi Huang, Jiang Long, Gan Zhao et al.
Periodic orbits around a magnetically charged black hole in f(R,T) gravity coupled with Euler-Heisenberg electrodynamics
Jun-Long Huang, Chen-Kai Qiao, Jun Tao
Exotic Spinor Deformation of a Schwarzschild Black Hole: Perturbations and Stability
Luís Rodolfo dos Santos Filho, Bertha Cuadros-Melgar
Two Languages for the Same Resonance: From Nuclear Decay to Black-Hole Ringdown
Okuto Morikawa
Peeling property for the Einstein scalar field equations with the nonzero cosmological constant
Jialue Li, Xiao Zhang