Thermal false vacuum decay in (1+1)-dimensions: Evidence for non-equilibrium dynamics
Dalila P\^irvu, Andrey Shkerin, Sergey Sibiryakov

TL;DR
This study numerically investigates thermal false vacuum decay in (1+1) dimensions, revealing non-equilibrium effects that significantly influence decay rates and challenging the assumptions of standard equilibrium-based predictions.
Contribution
It demonstrates the breakdown of thermal equilibrium during bubble nucleation and proposes bounds on thermalization time for Euclidean formalism validity, highlighting implications for single-field and multi-field models.
Findings
Decay rate prefactor is nearly ten times lower than predicted.
Non-equilibrium dynamics suppress coherent oscillonic precursors.
Thermalization time critically affects the applicability of equilibrium predictions.
Abstract
We numerically study the evolution of a classical real scalar field in dimensions with initial conditions describing thermal fluctuations around a metastable vacuum. We track false vacuum decay in real time and compare several observables to the predictions of the standard Euclidean formalism. We find agreement for the shape of the critical bubble and the exponential suppression of the decay rate. However, the decay rate prefactor is almost an order of magnitude lower than the predicted value. We argue that this signals a breakdown of thermal equilibrium during the bubble nucleation. In addition, the inefficient thermalization in the system biases the properties of the statistical ensemble and leads to further decrease of the decay rate with time. We substantiate our interpretation with a suite of stochastic field simulations with controlled thermalization time. Varying this…
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Taxonomy
TopicsCold Atom Physics and Bose-Einstein Condensates · Quantum Mechanics and Applications · Quantum, superfluid, helium dynamics
