Probing false vacuum decay on a cold-atom gauge-theory quantum simulator
Abstract
In the context of quantum electrodynamics, the decay of false vacuum leads to the production of electron-positron pair, a phenomenon known as the Schwinger effect. In practical experimental scenarios, producing a pair requires an extremely strong electric field, thus suppressing the production rate and making this process very challenging to observe. Here we report an experimental investigation, in a cold-atom quantum simulator, of the effect of the background field on pair production from the infinite-mass vacuum in a D lattice gauge theory. The ability to tune the background field allows us to study pair production in a large production rate regime. Furthermore, we find that the energy spectrum of the time-evolved observables in the zero mass limit displays excitation peaks analogous to bosonic modes in the Schwinger model. Our work opens the door to quantum-simulation experiments that can controllably tune the production of pairs and manipulate their far-from-equilibrium dynamics.
Cite
@article{arxiv.2411.12565,
title = {Probing false vacuum decay on a cold-atom gauge-theory quantum simulator},
author = {Zi-Hang Zhu and Ying Liu and Gianluca Lagnese and Federica Maria Surace and Wei-Yong Zhang and Ming-Gen He and Jad C. Halimeh and Marcello Dalmonte and Siddhardh C. Morampudi and Frank Wilczek and Zhen-Sheng Yuan and Jian-Wei Pan},
journal= {arXiv preprint arXiv:2411.12565},
year = {2024}
}