Bohmian singularity resolution and quantum relaxation in Bianchi type-I quantum cosmology
Vishal, Malay K. Nandy

TL;DR
This paper explores how different quantum wave packets influence singularity resolution and relaxation in Bianchi type-I quantum cosmology within the Bohmian framework, revealing that wave packet structure critically affects non-singular trajectories and quantum relaxation.
Contribution
It demonstrates that the wave packet shape determines the effectiveness of singularity avoidance and quantum relaxation in Bohmian quantum cosmology models.
Findings
Lorentzian wavepackets produce more non-singular bounce trajectories.
Gaussian superpositions tend to yield classical singular solutions.
Lorentzian wavepackets lead to better approach to quantum equilibrium.
Abstract
We investigate cosmological singularity resolution and relaxation dynamics within the Bohmian mechanics via the plane-symmetric Bianchi type-I minisuperspace model in the Wheeler-DeWitt framework of quantum cosmology by constructing wave functions as Gaussian and Lorentzian wavepackets. Our analyses of the corresponding Bohmian trajectories reveal that Gaussian superposition predominantly yields classical singular solutions, with only a low fraction of small-amplitude cyclic trajectories. On the other hand, the Lorentzian wavepacket, characterized by the power-law momentum tail, generates stronger quantum potential barrier and a substantially rich velocity field, producing a significant fraction of non-singular bounce trajectories over extended volume ranges. We further examine quantum relaxation by evolving non-equilibrium distributions under the corresponding guidance dynamics. The…
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