Dissipative Floquet Dynamics: from Steady State to Measurement Induced Criticality in Trapped-ion Chains

Author:

Sierant Piotr12,Chiriacò Giuliano13,Surace Federica M.13,Sharma Shraddha1,Turkeshi Xhek13,Dalmonte Marcello13,Fazio Rosario14,Pagano Guido5

Affiliation:

1. The Abdus Salam International Center for Theoretical Physics, Strada Costiera 11, 34151 Trieste, Italy

2. Institute of Theoretical Physics, Jagiellonian University in Krakow, Łojasiewicza 11, 30-348 Kraków, Poland

3. SISSA — International School of Advanced Studies, via Bonomea 265, 34136 Trieste, Italy

4. Dipartimento di Fisica, Università di Napoli ``Federico II'', Monte S. Angelo, I-80126 Napoli, Italy

5. Department of Physics and Astronomy, Rice University, 6100 Main Street, Houston, TX 77005, USA

Abstract

Quantum systems evolving unitarily and subject to quantum measurements exhibit various types of non-equilibrium phase transitions, arising from the competition between unitary evolution and measurements. Dissipative phase transitions in steady states of time-independent Liouvillians and measurement induced phase transitions at the level of quantum trajectories are two primary examples of such transitions. Investigating a many-body spin system subject to periodic resetting measurements, we argue that many-body dissipative Floquet dynamics provides a natural framework to analyze both types of transitions. We show that a dissipative phase transition between a ferromagnetic ordered phase and a paramagnetic disordered phase emerges for long-range systems as a function of measurement probabilities. A measurement induced transition of the entanglement entropy between volume law scaling and sub-volume law scaling is also present, and is distinct from the ordering transition. The two phases correspond to an error-correcting and a quantum-Zeno regimes, respectively. The ferromagnetic phase is lost for short range interactions, while the volume law phase of the entanglement is enhanced. An analysis of multifractal properties of wave function in Hilbert space provides a common perspective on both types of transitions in the system. Our findings are immediately relevant to trapped ion experiments, for which we detail a blueprint proposal based on currently available platforms.

Funder

ERC

MIUR Programme FARE

Foundation for Polish Science

National Science Foundation

DOE Office of Science, Office of Nuclear Physics

Army Research Office

Office of Naval Research

Publisher

Verein zur Forderung des Open Access Publizierens in den Quantenwissenschaften

Subject

Physics and Astronomy (miscellaneous),Atomic and Molecular Physics, and Optics

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