Persistent-current states originating from the Hilbert space
fragmentation in momentum space
- URL: http://arxiv.org/abs/2211.00785v5
- Date: Thu, 28 Dec 2023 02:40:36 GMT
- Title: Persistent-current states originating from the Hilbert space
fragmentation in momentum space
- Authors: Masaya Kunimi and Ippei Danshita
- Abstract summary: We show that persistent-current states emerge due to the HSF in the momentum space.
We also investigate the stability of the PC states against the random potential, which breaks the structure of the HSF.
- Score: 0.0
- License: http://arxiv.org/licenses/nonexclusive-distrib/1.0/
- Abstract: Hilbert space fragmentation (HSF) is a phenomenon that the Hilbert space of
an isolated quantum system splits into exponentially many disconnected
subsectors. The fragmented systems do not thermalize after long-time evolution
because the dynamics are restricted to a small subsector. Inspired by recent
developments of the HSF, we construct the Hamiltonian that exhibits the HSF in
the momentum space. We show that persistent-current (PC) states emerge due to
the HSF in the momentum space. We also investigate the stability of the PC
states against the random potential, which breaks the structure of the HSF, and
find that the decay rate of the PC is almost independent of the current
velocity.
Related papers
- Observation of slow relaxation due to Hilbert space fragmentation in strongly interacting Bose-Hubbard chains [0.0]
We experimentally investigate the one-dimensional Bose-Hubbard system with neither disorder nor tilt potential.
We find that the numbers of singlons and doublons are conserved during the dynamics, indicating HSF as a mechanism of the observed slow relaxation.
arXiv Detail & Related papers (2025-02-05T07:52:58Z) - Influence of momentum confinement in the phase-space dynamics of the Kramers-Henneberger atom [0.0]
We investigate the phase-space dynamics of the Kramers Henneberger (KH) atom solving the time-dependent Schr"odinger equation.
We find that, for the time-averaged KH potential, coherent superpositions of eigenstates perform a cyclic motion confined in momentum space.
A comparison of the quasiprobability flow with classical phase-space constraints shows that, for the KH atom, confinement occurs in momentum space.
arXiv Detail & Related papers (2024-12-09T11:36:49Z) - 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) - Exploring Hilbert-Space Fragmentation on a Superconducting Processor [23.39066473461786]
Isolated interacting quantum systems generally thermalize, yet there are several counterexamples for the breakdown of ergodicity.
Recently, ergodicity breaking has been observed in systems subjected to linear potentials, termed Stark many-body localization.
Here, we experimentally explore initial-state dependent dynamics using a ladder-type superconducting processor with up to 24 qubits.
arXiv Detail & Related papers (2024-03-14T04:39:14Z) - Floquet Engineering of Hilbert Space Fragmentation in Stark Lattices [3.938836199747998]
The concept of Hilbert space fragmentation (HSF) has recently been put forward as a routine to break quantum ergodicity.
We propose a scheme to tune the HSF in a one-dimensional tilted lattice of interacting spinless fermions with periodically driven tunneling.
arXiv Detail & Related papers (2023-11-20T13:58:18Z) - Quantum Metrology Protected by Hilbert Space Fragmentation [0.0]
coherent quantum dynamics employing the Hilbert-space fragmentation (HSF)
We show that the emergent HSF caused by strong Ising interactions enables us to design a stable state where part of the spins is effectively decoupled from the rest of the system.
Using the decoupled spins as a probe to measure a transverse field, we demonstrate that the Heisenberg limited sensitivity is achieved without suffering from thermalization.
arXiv Detail & Related papers (2022-11-17T14:51:22Z) - Indication of critical scaling in time during the relaxation of an open
quantum system [34.82692226532414]
Phase transitions correspond to the singular behavior of physical systems in response to continuous control parameters like temperature or external fields.
Near continuous phase transitions, associated with the divergence of a correlation length, universal power-law scaling behavior with critical exponents independent of microscopic system details is found.
arXiv Detail & Related papers (2022-08-10T05:59:14Z) - Fast Thermalization from the Eigenstate Thermalization Hypothesis [69.68937033275746]
Eigenstate Thermalization Hypothesis (ETH) has played a major role in understanding thermodynamic phenomena in closed quantum systems.
This paper establishes a rigorous link between ETH and fast thermalization to the global Gibbs state.
Our results explain finite-time thermalization in chaotic open quantum systems.
arXiv Detail & Related papers (2021-12-14T18:48:31Z) - Prolonged orbital relaxation by locally modified phonon density of
states for SiV$^-$ center in nanodiamonds [45.82374977939355]
Coherent quantum systems are a key resource for emerging quantum technology.
A novel method is presented to prolong the orbital relaxation with a locally modified phonon density of states.
arXiv Detail & Related papers (2021-07-30T14:14:26Z) - Observation of Time-Crystalline Eigenstate Order on a Quantum Processor [80.17270167652622]
Quantum-body systems display rich phase structure in their low-temperature equilibrium states.
We experimentally observe an eigenstate-ordered DTC on superconducting qubits.
Results establish a scalable approach to study non-equilibrium phases of matter on current quantum processors.
arXiv Detail & Related papers (2021-07-28T18:00:03Z) - 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)
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.