The fate of the false vacuum: Finite temperature, entropy and
topological phase in quantum simulations of the early universe
- URL: http://arxiv.org/abs/2010.08665v1
- Date: Fri, 16 Oct 2020 23:30:01 GMT
- Title: The fate of the false vacuum: Finite temperature, entropy and
topological phase in quantum simulations of the early universe
- Authors: King Lun Ng, Bogdan Opanchuk, Manushan Thenabadu, Margaret Reid and
Peter D. Drummond
- Abstract summary: A table-top quantum simulator in the form of an engineered Bose-Einstein condensate (BEC) has been proposed to give dynamical solutions of the quantum field equations.
We give a numerical feasibility study of the BEC quantum simulator under realistic conditions and temperatures, with an approximate truncated Wigner (tW) phase-space method.
We report the observation of false vacuum tunneling in these simulations, and the formation of multiple bubble 'universes' with distinct topological properties.
- Score: 0.0
- License: http://arxiv.org/licenses/nonexclusive-distrib/1.0/
- Abstract: Despite being at the heart of the theory of the "Big Bang" and cosmic
inflation, the quantum field theory prediction of false vacuum tunneling has
not been tested. To address the exponential complexity of the problem, a
table-top quantum simulator in the form of an engineered Bose-Einstein
condensate (BEC) has been proposed to give dynamical solutions of the quantum
field equations. In this paper, we give a numerical feasibility study of the
BEC quantum simulator under realistic conditions and temperatures, with an
approximate truncated Wigner (tW) phase-space method. We report the observation
of false vacuum tunneling in these simulations, and the formation of multiple
bubble 'universes' with distinct topological properties. The tunneling gives a
transition of the relative phase of coupled Bose fields from a metastable to a
stable 'vacuum'. We include finite temperature effects that would be found in a
laboratory experiment and also analyze the cut-off dependence of modulational
instabilities in Floquet space. Our numerical phase-space model does not use
thin-wall approximations, which are inapplicable to cosmologically interesting
models. It is expected to give the correct quantum treatment including
superpositions and entanglement during dynamics. By analyzing a nonlocal
observable called the topological phase entropy (TPE), our simulations provide
information about phase structure in the true vacuum. We observe a cooperative
effect in which the true vacua bubbles representing distinct universes each
have one or the other of two distinct topologies. The TPE initially increases
with time, reaching a peak as the multiple universes are formed, and then
decreases with time to the phase-ordered vacuum state. This gives a model for
the formation of universes with one of two distinct phases, which is a possible
solution to the problem of particle-antiparticle asymmetry.
Related papers
- Observation of Hilbert-space fragmentation and fractonic excitations in two-dimensional Hubbard systems [0.0]
We experimentally observe Hilbert space fragmentation (HSF) in a two-dimensional tilted Bose-Hubbard model.
We find uniform initial states with equal particle number and energy differ strikingly in their relaxation dynamics.
Our results mark the first observation of HSF beyond one dimension, as well as the concomitant direct observation of fractons.
arXiv Detail & Related papers (2024-04-23T10:22:40Z) - Anisotropic Inflation in Dipolar Bose-Einstein Condensates [0.0]
Dipolar Bose-Einstein condensates (BECs) furnish a laboratory quantum simulation platform for the anisotropy evolution of fluctuation spectra during inflation.
We construct the anisotropic analogue space-time metric governing sound, by linking the time-varying strength of dipolar and contact interactions in the BEC to the scale factors in different coordinate directions.
arXiv Detail & Related papers (2023-07-05T09:32:40Z) - Measurement phase transitions in the no-click limit as quantum phase
transitions of a non-hermitean vacuum [77.34726150561087]
We study phase transitions occurring in the stationary state of the dynamics of integrable many-body non-Hermitian Hamiltonians.
We observe that the entanglement phase transitions occurring in the stationary state have the same nature as that occurring in the vacuum of the non-hermitian Hamiltonian.
arXiv Detail & Related papers (2023-01-18T09:26:02Z) - Fermion production at the boundary of an expanding universe: a cold-atom
gravitational analogue [68.8204255655161]
We study the phenomenon of cosmological particle production of Dirac fermions in a Friedman-Robertson-Walker spacetime.
We present a scheme for the quantum simulation of this gravitational analogue by means of ultra-cold atoms in Raman optical lattices.
arXiv Detail & Related papers (2022-12-02T18:28:23Z) - False vacuum decay in quantum spin chains [0.0]
We study the non-equilibrium dynamics of the false vacuum in a quantum Ising chain and in an XXZ ladder.
We find that the numerical results agree with the theoretical prediction that the decay rate is exponentially small in the inverse of the longitudinal field.
arXiv Detail & Related papers (2021-07-21T16:01:39Z) - Visualizing spinon Fermi surfaces with time-dependent spectroscopy [62.997667081978825]
We propose applying time-dependent photo-emission spectroscopy, an established tool in solid state systems, in cold atom quantum simulators.
We show in exact diagonalization simulations of the one-dimensional $t-J$ model that the spinons start to populate previously unoccupied states in an effective band structure.
The dependence of the spectral function on the time after the pump pulse reveals collective interactions among spinons.
arXiv Detail & Related papers (2021-05-27T18:00:02Z) - Analog cosmological reheating in an ultracold Bose gas [58.720142291102135]
We quantum-simulate the reheating-like dynamics of a generic cosmological single-field model in an ultracold Bose gas.
Expanding spacetime as well as the background oscillating inflaton field are mimicked in the non-relativistic limit.
The proposed experiment has the potential of exploring the evolution up to late times even beyond the weak coupling regime.
arXiv Detail & Related papers (2020-08-05T18:00:26Z) - Probing eigenstate thermalization in quantum simulators via
fluctuation-dissipation relations [77.34726150561087]
The eigenstate thermalization hypothesis (ETH) offers a universal mechanism for the approach to equilibrium of closed quantum many-body systems.
Here, we propose a theory-independent route to probe the full ETH in quantum simulators by observing the emergence of fluctuation-dissipation relations.
Our work presents a theory-independent way to characterize thermalization in quantum simulators and paves the way to quantum simulate condensed matter pump-probe experiments.
arXiv Detail & Related papers (2020-07-20T18:00:02Z) - Exploring 2D synthetic quantum Hall physics with a quasi-periodically
driven qubit [58.720142291102135]
Quasi-periodically driven quantum systems are predicted to exhibit quantized topological properties.
We experimentally study a synthetic quantum Hall effect with a two-tone drive.
arXiv Detail & Related papers (2020-04-07T15:00:41Z)
This list is automatically generated from the titles and abstracts of the papers in this site.
This site does not guarantee the quality of this site (including all information) and is not responsible for any consequences.