Many-body localization and delocalization dynamics in the thermodynamic
limit
- URL: http://arxiv.org/abs/2202.10498v2
- Date: Fri, 24 Jun 2022 20:53:44 GMT
- Title: Many-body localization and delocalization dynamics in the thermodynamic
limit
- Authors: Jonas Richter, Arijeet Pal
- Abstract summary: Numerical linked cluster expansions (NLCE) provide a means to tackle quantum systems directly in the thermodynamic limit.
We demonstrate that NLCE provide a powerful tool to explore MBL by simulating quench dynamics in disordered spin-$1/2$ two-leg ladders and Fermi-Hubbard chains.
Our work sheds light on MBL in systems beyond the well-studied disordered Heisenberg chain and emphasizes the usefulness of NLCE for this purpose.
- Score: 0.0
- License: http://arxiv.org/licenses/nonexclusive-distrib/1.0/
- Abstract: Disordered quantum systems undergoing a many-body localization (MBL)
transition fail to reach thermal equilibrium under their own dynamics.
Distinguishing between asymptotically localized or delocalized dynamics based
on numerical results is however nontrivial due to finite-size effects.
Numerical linked cluster expansions (NLCE) provide a means to tackle quantum
systems directly in the thermodynamic limit, but are challenging for models
without translational invariance. Here, we demonstrate that NLCE provide a
powerful tool to explore MBL by simulating quench dynamics in disordered
spin-$1/2$ two-leg ladders and Fermi-Hubbard chains. Combining NLCE with an
efficient real-time evolution of pure states, we obtain converged results for
the decay of the imbalance on long time scales and show that, especially for
intermediate disorder below the putative MBL transition, NLCE outperform direct
simulations of finite systems with open or periodic boundaries. Furthermore,
while spin is delocalized even in strongly disordered Hubbard chains with
frozen charge, we unveil that an additional tilted potential leads to a drastic
slowdown of the spin imbalance and nonergodic behavior on accessible times. Our
work sheds light on MBL in systems beyond the well-studied disordered
Heisenberg chain and emphasizes the usefulness of NLCE for this purpose.
Related papers
- Measurement-induced transitions for interacting fermions [43.04146484262759]
We develop a field-theoretical framework that provides a unified approach to observables characterizing entanglement and charge fluctuations.
Within this framework, we derive a replicated Keldysh non-linear sigma model (NLSM)
By using the renormalization-group approach for the NLSM, we determine the phase diagram and the scaling of physical observables.
arXiv Detail & Related papers (2024-10-09T18:00:08Z) - Entanglement and operator correlation signatures of many-body quantum Zeno phases in inefficiently monitored noisy systems [49.1574468325115]
The interplay between information-scrambling Hamiltonians and local continuous measurements hosts platforms for exotic measurement-induced phase transition.
We identify a non-monotonic dependence on the local noise strength in both the averaged entanglement and operator correlations.
The analysis of scaling with the system size in a finite length chain indicates that, at finite efficiency, this effect leads to distinct MiPTs for operator correlations and entanglement.
arXiv Detail & Related papers (2024-07-16T13:42:38Z) - Phenomenology of many-body localization in bond-disordered spin chains [0.0]
Many-body localization hinders the thermalization of quantum many-body systems in the presence of strong disorder.
In this work, we study the MBL regime in bond-disordered spin-1/2 XXZ spin chain.
arXiv Detail & Related papers (2024-05-16T12:52:47Z) - Emergence of fluctuating hydrodynamics in chaotic quantum systems [47.187609203210705]
macroscopic fluctuation theory (MFT) was recently developed to model the hydrodynamics of fluctuations.
We perform large-scale quantum simulations that monitor the full counting statistics of particle-number fluctuations in boson ladders.
Our results suggest that large-scale fluctuations of isolated quantum systems display emergent hydrodynamic behavior.
arXiv Detail & Related papers (2023-06-20T11:26:30Z) - Entanglement and localization in long-range quadratic Lindbladians [49.1574468325115]
Signatures of localization have been observed in condensed matter and cold atomic systems.
We propose a model of one-dimensional chain of non-interacting, spinless fermions coupled to a local ensemble of baths.
We show that the steady state of the system undergoes a localization entanglement phase transition by tuning $p$ which remains stable in the presence of coherent hopping.
arXiv Detail & Related papers (2023-03-13T12:45:25Z) - 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) - Sufficient condition for gapless spin-boson Lindbladians, and its
connection to dissipative time-crystals [64.76138964691705]
We discuss a sufficient condition for gapless excitations in the Lindbladian master equation for collective spin-boson systems.
We argue that gapless modes can lead to persistent dynamics in the spin observables with the possible formation of dissipative time-crystals.
arXiv Detail & Related papers (2022-09-26T18:34:59Z) - Directly Revealing Entanglement Dynamics through Quantum Correlation
Transfer Functions with Resultant Demonstration of the Mechanism of Many-Body
Localization [0.0]
This paper introduces the Quantum Correlation Transfer Function (QCTF) approach to entanglement dynamics in many-body quantum systems.
We show that QCTF can be fully characterized directly from the system's Hamiltonian, which circumvents the bottleneck of calculating the many-body system's time-evolution.
We also show that QCTF provides a new foundation to study the Eigenstate Thermalization Hypothesis (ETH)
arXiv Detail & Related papers (2022-01-26T22:50:04Z) - Ergodicity breaking in an incommensurate system observed by OTOCs and
Loschmidt Echoes: From quantum diffusion to sub-diffusion [0.0]
We propose a new observable to study the transition in a spin chain under the disorder'' of a Harper-Hofstadter-Aubry-Andr'e on-site potential.
In the absence of many-body interactions, the ZOGE coincides with the inverse participation ratio of a Fermionic wave function.
arXiv Detail & Related papers (2021-06-14T12:41:32Z) - Observation of Stark many-body localization without disorder [0.0]
Many-body localization (MBL) can result in preservation of a non-thermal state.
We realize Stark MBL in a trapped-ion quantum simulator.
Results demonstrate the unexpected generality of MBL.
arXiv Detail & Related papers (2021-02-14T21:33:23Z) - Characterizing many-body localization via exact disorder-averaged
quantum noise [0.0]
Many-body localized (MBL) phases of disordered quantum many-particle systems have a number of unique properties.
We characterize the quantum noise that a disordered spin system exerts on its parts via an influence matrix (IM)
Viewed as a wavefunction in the space of trajectories of an individual spin, the IM exhibits slow scaling of temporal entanglement in the MBL phase.
arXiv Detail & Related papers (2020-12-01T19:01:31Z)
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.