Numerical Realization of Dynamical Fermionization and Bethe Rapidities in a cold quenched Bose gas
- URL: http://arxiv.org/abs/2403.11190v1
- Date: Sun, 17 Mar 2024 12:35:12 GMT
- Title: Numerical Realization of Dynamical Fermionization and Bethe Rapidities in a cold quenched Bose gas
- Authors: Sumita Datta, Maxim Olshanii,
- Abstract summary: We explore the non-equilibrium dynamics of a cold Lieb-Liniger (LL) Bose gas -- a well established integrable quantum system in one dimension exhibiting repulsive interactions.
Our study involves the presence of a hard wall potential during the ballistic expansion of the Bose gas from its ground state within an infinite deep box of length L0 to a final length L.
- Score: 0.0
- License: http://arxiv.org/licenses/nonexclusive-distrib/1.0/
- Abstract: In this numerical investigation, we explore the non-equilibrium dynamics of a cold Lieb-Liniger (LL) Bose gas -- a well established integrable quantum system in one dimension exhibiting repulsive interactions. Our study involves the presence of a hard wall potential during the ballistic expansion of the Bose gas from its ground state within an infinite deep box of length L0 to a final length L. The Quantum Monte Carlo method, based on the Generalized Feynman-Kac approach, serves as our computational tool. Given the integrability of the Lieb-Liniger model, strongly correlated systems resist thermalization. To capture the intricate dynamics we employ the concept of Bethe Rapidities(BRs), a holistic function that extends beyond atomic or energy density considerations. Our thought experiment involves a box-to-box expansion, providing a unique opportunity for direct numerical observation of Bethe Rapidities and the phenomenon of Dynamical Fermionization(DF). This investigation aims to contribute insights into the behavior of strongly correlated quantum systems during non-equilibrium processes, offering a detailed examination of Bethe Rapidities and the dynamic evolution of Fermionization throughout the expansion.
Related papers
- Thermalization and Criticality on an Analog-Digital Quantum Simulator [133.58336306417294]
We present a quantum simulator comprising 69 superconducting qubits which supports both universal quantum gates and high-fidelity analog evolution.
We observe signatures of the classical Kosterlitz-Thouless phase transition, as well as strong deviations from Kibble-Zurek scaling predictions.
We digitally prepare the system in pairwise-entangled dimer states and image the transport of energy and vorticity during thermalization.
arXiv Detail & Related papers (2024-05-27T17:40:39Z) - Bardeen-Cooper-Schrieffer interaction as an infinite-range Penson-Kolb pairing mechanism [0.0]
We show that the well-known $(kuparrow, -kdownarrow)$ Bardeen-Cooper-Schrieffer interaction, when considered in real space, is equivalent to an infinite-range Penson-Kolb pairing mechanism.
We investigate the dynamics of fermionic particles confined in a ring-shaped lattice.
arXiv Detail & Related papers (2024-01-30T10:29:46Z) - Neural-network quantum states for ultra-cold Fermi gases [49.725105678823915]
This work introduces a novel Pfaffian-Jastrow neural-network quantum state that includes backflow transformation based on message-passing architecture.
We observe the emergence of strong pairing correlations through the opposite-spin pair distribution functions.
Our findings suggest that neural-network quantum states provide a promising strategy for studying ultra-cold Fermi gases.
arXiv Detail & Related papers (2023-05-15T17:46:09Z) - Slow semiclassical dynamics of a two-dimensional Hubbard model in
disorder-free potentials [77.34726150561087]
We show that introduction of harmonic and spin-dependent linear potentials sufficiently validates fTWA for longer times.
In particular, we focus on a finite two-dimensional system and show that at intermediate linear potential strength, the addition of a harmonic potential and spin dependence of the tilt, results in subdiffusive dynamics.
arXiv Detail & Related papers (2022-10-03T16:51:25Z) - Non-equilibrium quantum thermodynamics of a particle trapped in a
controllable time-varying potential [0.0]
We study the dynamics of a levitated nanoparticles undergoing the transition from an harmonic potential to a double-well.
We investigate the dynamics with the Wehrl entropy production and its rates.
The effects and the competitions of the unitary and the dissipative parts onto the system are demonstrated.
arXiv Detail & Related papers (2021-10-29T16:25:25Z) - Nonergodic dynamics of the one-dimensional Bose-Hubbard model with a
trapping potential [0.0]
We investigate nonergodic behavior of the one-dimensional Bose-Hubbard model.
We compute the level spacing statistic, the time evolution of the number imbalance between the odd and the even sites, and the entanglement entropy.
arXiv Detail & Related papers (2021-08-03T01:37:42Z) - 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) - Breakdown of quantum-classical correspondence and dynamical generation
of entanglement [6.167267225728292]
We study the generation of quantum entanglement induced by an ideal Fermi gas confined in a chaotic cavity.
We find that the breakdown of the quantum-classical correspondence of particle motion, via dramatically changing the spatial structure of many-body wavefunction, leads to profound changes of the entanglement structure.
arXiv Detail & Related papers (2021-04-14T03:09:24Z) - Cavity QED with Quantum Gases: New Paradigms in Many-Body Physics [0.0]
We review the recent developments and the current status in the field of quantum-gas cavity QED.
Composite quantum-gas--cavity systems offer the opportunity to implement, simulate, and experimentally test fundamental solid-state Hamiltonians.
arXiv Detail & Related papers (2021-02-08T19:00:03Z) - 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)
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.