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Realizing topological edge states with Rydberg-atom synthetic dimensions

Physics

Realizing topological edge states with Rydberg-atom synthetic dimensions

S. K. Kanungo, J. D. Whalen, et al.

Explore the fascinating world of synthetic dimensions in quantum simulation with groundbreaking research conducted by S. K. Kanungo, J. D. Whalen, Y. Lu, M. Yuan, S. Dasgupta, F. B. Dunning, K. R. A. Hazzard, and T. C. Killian. Discover how ultracold strontium atoms reveal topological edge states while navigating the complexities of Rydberg levels and millimeter waves.

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Playback language: English
Abstract
A discrete degree of freedom can be engineered to match the Hamiltonian of particles moving in a real-space lattice potential. Such synthetic dimensions are powerful tools for quantum simulation because of the control they offer and the ability to create configurations difficult to access in real space. Here, in an ultracold <sup>84</sup>Sr atom, we demonstrate a synthetic-dimension based on Rydberg levels coupled with millimeter waves. Tunneling amplitudes between synthetic lattice sites and on-site potentials are set by the millimeter-wave amplitudes and detunings respectively. Alternating weak and strong tunneling in a one-dimensional configuration realizes the single-particle Su-Schrieffer-Heeger (SSH) Hamiltonian, a paradigmatic model of topological matter. Band structure is probed through optical excitation from the ground state to Rydberg levels, revealing symmetry-protected topological edge states at zero energy. Edge-state energies are robust to perturbations of tunneling-rates that preserve chiral symmetry, but can be shifted by the introduction of on-site potentials.
Publisher
Nature Communications
Published On
Feb 21, 2022
Authors
S. K. Kanungo, J. D. Whalen, Y. Lu, M. Yuan, S. Dasgupta, F. B. Dunning, K. R. A. Hazzard, T. C. Killian
Tags
synthetic dimensions
quantum simulation
topological matter
Rydberg levels
ultracold atoms
SSH Hamiltonian
chiral symmetry
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