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Open AccessJournal ArticleDOI

A highly-tunable quantum simulator of spin systems using two-dimensional arrays of single Rydberg atoms

TLDR
In this paper, the authors present a platform for quantum simulation of spin systems, using individual atoms trapped in highly-tunable two-dimensional arrays of optical microtraps, that interact via strong, anisotropic interactions when excited to Rydberg $D$-states.
Abstract
Quantum simulation of spin Hamiltonians is currently a very active field of research, using different implementations such as trapped ions, superconducting qubits, or ultracold atoms in optical lattices. All of these approaches have their own assets and limitations. Here, we report on a novel platform for quantum simulation of spin systems, using individual atoms trapped in highly-tunable two-dimensional arrays of optical microtraps, that interact via strong, anisotropic interactions when excited to Rydberg $D$-states. We illustrate the versatility of our system by studying the dynamics of an Ising-like spin-$1/2$ system in a transverse field with up to thirty spins, for a variety of geometries in one and two dimensions, and for a wide range of interaction strengths. Our data agree well with numerical simulations of the spin-$1/2$ model except at long times, where we observe deviations that we attribute to the multilevel structure of Rydberg $D$-states.

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Journal ArticleDOI

Probing many-body dynamics on a 51-atom quantum simulator.

TL;DR: This work demonstrates a method for creating controlled many-body quantum matter that combines deterministically prepared, reconfigurable arrays of individually trapped cold atoms with strong, coherent interactions enabled by excitation to Rydberg states, and realizes a programmable Ising-type quantum spin model with tunable interactions and system sizes of up to 51 qubits.
Journal ArticleDOI

Quantum simulations with ultracold atoms in optical lattices

TL;DR: In this article, the authors review recent experimental progress in quantum many-body simulation and comment on future directions, and present a review of the current state-of-the-art in this field.
Journal ArticleDOI

Observation of a many-body dynamical phase transition with a 53-qubit quantum simulator

TL;DR: Here, a quantum simulator composed of up to 53 qubits is used to study non-equilibrium dynamics in the transverse-field Ising model with long-range interactions, enabling the dynamical phase transition to be probed directly and revealing computationally intractable features that rely on the long- range interactions and high connectivity between qubits.
Journal ArticleDOI

Weak ergodicity breaking from quantum many-body scars

TL;DR: In this article, it was shown that ergodicity can be weakly broken by the presence of special eigenstates in the many-body spectrum that are reminiscent of quantum scars in chaotic non-interacting systems.
Journal ArticleDOI

Quantum computing with atomic qubits and Rydberg interactions: progress and challenges

TL;DR: In this paper, the authors present a review of quantum computation with neutral atom qubits and examine Rydberg mediated gate protocols and fidelity for two-and multi-qubit interactions.
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