Supersolidity in Rydberg tweezer arrays
- URL: http://arxiv.org/abs/2407.12752v3
- Date: Wed, 15 Jan 2025 22:30:06 GMT
- Title: Supersolidity in Rydberg tweezer arrays
- Authors: Lukas Homeier, Simon Hollerith, Sebastian Geier, Neng-Chun Chiu, Antoine Browaeys, Lode Pollet,
- Abstract summary: Rydberg tweezer arrays provide a versatile platform to explore quantum magnets with dipolar XY or van-der-Waals Ising ZZ interactions.
We propose a scheme combining dipolar and van-der-Waals interactions between two Rydberg states, where the amplitude of the latter can be greater than that of the former.
On the triangular lattice with repulsive interactions, we predict the existence of a robust supersolid phase with a critical entropy per particle.
- Score: 0.41232474244672235
- License:
- Abstract: Rydberg tweezer arrays provide a versatile platform to explore quantum magnets with dipolar XY or van-der-Waals Ising ZZ interactions. Here, we propose a scheme combining dipolar and van-der-Waals interactions between two Rydberg states, where the amplitude of the latter can be greater than that of the former, realizing an extended Hubbard model with long-range tunnelings in optical tweezer arrays. On the triangular lattice with repulsive interactions, we predict the existence of a robust supersolid phase with a critical entropy per particle $S/N \approx 0.19$ accessible in current Rydberg tweezer experiments supported by large-scale quantum Monte Carlo simulations. We further demonstrate the experimental feasibility by identifying pairs of Rydberg states in ${}^{87}$Rb realizing the required interactions. Such a lattice supersolid is long-lived, found over a wide parameter range in an isotropic and flat two-dimensional geometry, and can be realized for 100s of particles allowing one to directly probe the defect-induced picture of supersolids. Its thermodynamical and dynamical properties can hence be studied at a far larger scale than hitherto possible.
Related papers
- Itinerant magnetism in Hubbard models with long-range interactions [0.0]
A wide variety of platforms, ranging from semiconductor quantum-dot arrays to mo'e materials, have recently emerged as powerful quantum simulators.
We investigate the effects of the Hubbard model which includes long-dimensional lattices.
For small electron dopings, we uncover a rich variety of magnetically ordered numerically states.
arXiv Detail & Related papers (2024-10-01T18:00:00Z) - Supersolidity and Simplex Phases in Spin-1 Rydberg Atom Arrays [0.8246494848934447]
strongly correlated quantum phases of matter emerge in two-dimensional atom arrays.
We identify a wealth of correlated states, including lattice supersolids and simplex phases, which can be naturally realized in near-term experiments.
arXiv Detail & Related papers (2024-07-24T18:00:01Z) - Simulating a two component Bose-Hubbard model with imbalanced hopping in a Rydberg tweezer array [0.20971479389679332]
We simulate a two-component Bose-Hubbard model with power-law hopping using arrays of multilevel Rydberg atoms.
We show how multilevel Rydberg atoms provide an opportunity to explore the diverse non-equilibrium quench dynamics of the model.
arXiv Detail & Related papers (2023-12-22T17:19:36Z) - Quantum phases of hardcore bosons with repulsive dipolar density-density interactions on two-dimensional lattices [0.0]
bosons dynamics is described by the extended-Bose-Hubbard Hamiltonian on a two-dimensional lattice.
We consider three different lattice geometries: square, honeycomb, and triangular.
Our results are of immediate relevance for experimental realisations of self-organised crystalline ordering patterns in analogue quantum simulators.
arXiv Detail & Related papers (2023-11-17T16:35:02Z) - Higher-order topological Peierls insulator in a two-dimensional
atom-cavity system [58.720142291102135]
We show how photon-mediated interactions give rise to a plaquette-ordered bond pattern in the atomic ground state.
The pattern opens a non-trivial topological gap in 2D, resulting in a higher-order topological phase hosting corner states.
Our work shows how atomic quantum simulators can be harnessed to investigate novel strongly-correlated topological phenomena.
arXiv Detail & Related papers (2023-05-05T10:25:14Z) - Universal features of entanglement entropy in the honeycomb Hubbard
model [44.99833362998488]
This paper introduces a new method to compute the R'enyi entanglement entropy in auxiliary-field quantum Monte Carlo simulations.
We demonstrate the efficiency of this method by extracting, for the first time, universal subleading logarithmic terms in a two dimensional model of interacting fermions.
arXiv Detail & Related papers (2022-11-08T15:52:16Z) - 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) - Phase diagram of Rydberg-dressed atoms on two-leg triangular ladders [50.591267188664666]
We investigate the phase diagram of hard-core bosons in a triangular ladder with next-to-nearest-neighbor interaction along each leg.
For weak interactions, Abelian bosonization predicts a spin density wave and a fully gapless Luttinger liquid phase.
The competition with the zigzag interaction generates a charge density wave, a 'polarized holonic' phase, and a crystalline phase at the filling 2/5.
arXiv Detail & Related papers (2022-07-01T12:49:04Z) - Quantum spin liquids bootstrapped from Ising criticality in Rydberg
arrays [10.616940219574778]
We develop a new strategy for accessing a family of fractionalized phases known as quantum spin liquids in Rydberg arrays.
We specifically use effective field theory methods to study arrays assembled from Rydberg chains tuned to an Ising phase transition.
Our work suggests that appropriately tuned Rydberg arrays provide a cold-atoms counterpart of solid-state 'Kitaev materials'
arXiv Detail & Related papers (2022-03-31T18:00:00Z) - Tuning long-range fermion-mediated interactions in cold-atom quantum
simulators [68.8204255655161]
Engineering long-range interactions in cold-atom quantum simulators can lead to exotic quantum many-body behavior.
Here, we propose several tuning knobs, accessible in current experimental platforms, that allow to further control the range and shape of the mediated interactions.
arXiv Detail & Related papers (2022-03-31T13:32:12Z) - Accessing the topological Mott insulator in cold atom quantum simulators
with realistic Rydberg dressing [58.720142291102135]
We investigate a realistic scenario for the quantum simulation of such systems using cold Rydberg-dressed atoms in optical lattices.
We perform a detailed analysis of the phase diagram at half- and incommensurate fillings, in the mean-field approximation.
We furthermore study the stability of the phases with respect to temperature within the mean-field approximation.
arXiv Detail & Related papers (2022-03-28T14:55:28Z)
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.