arXiv Analytics

Sign in

arXiv:2107.09676 [quant-ph]AbstractReferencesReviewsResources

Realizing a dynamical topological phase in a trapped-ion quantum simulator

Philipp T. Dumitrescu, Justin Bohnet, John Gaebler, Aaron Hankin, David Hayes, Ajesh Kumar, Brian Neyenhuis, Romain Vasseur, Andrew C. Potter

Published 2021-07-20Version 1

Nascent platforms for programmable quantum simulation offer unprecedented access to new regimes of far-from-equilibrium quantum many-body dynamics in (approximately) isolated systems. Here, achieving precise control over quantum many-body entanglement is an essential task for quantum sensing and computation. Extensive theoretical work suggests that these capabilities can enable dynamical phases and critical phenomena that exhibit topologically-robust methods to create, protect, and manipulate quantum entanglement that self-correct against large classes of errors. However, to date, experimental realizations have been confined to classical (non-entangled) symmetry-breaking orders. In this work, we demonstrate an emergent dynamical symmetry protected topological phase (EDSPT), in a quasiperiodically-driven array of ten $^{171}\text{Yb}^+$ hyperfine qubits in Honeywell's System Model H1 trapped-ion quantum processor. This phase exhibits edge qubits that are dynamically protected from control errors, cross-talk, and stray fields. Crucially, this edge protection relies purely on emergent dynamical symmetries that are absolutely stable to generic coherent perturbations. This property is special to quasiperiodically driven systems: as we demonstrate, the analogous edge states of a periodically driven qubit-array are vulnerable to symmetry-breaking errors and quickly decohere. Our work paves the way for implementation of more complex dynamical topological orders that would enable error-resilient techniques to manipulate quantum information.

Related articles: Most relevant | Search more
arXiv:2001.02176 [quant-ph] (Published 2020-01-07)
Quantum information scrambling in a trapped-ion quantum simulator with tunable range interactions
arXiv:1906.02700 [quant-ph] (Published 2019-06-06)
Quantum Approximate Optimization with a Trapped-Ion Quantum Simulator
G. Pagano et al.
arXiv:2201.09234 [quant-ph] (Published 2022-01-23)
Observation of topological Euler insulators with a trapped-ion quantum simulator
W. -D. Zhao et al.