Nonergodic Quantum Dynamics from Deformations of Classical Cellular Automata
ORAL
Abstract
Classical reversible cellular automata (CAs), which describe the discrete-time dynamics of classical degrees of freedom in a finite state-space, can exhibit exact, nonthermal quantum eigenstates despite being classically chaotic. We show that families of periodically-driven (Floquet) quantum dynamics that include a classical CA in a special limit retain certain nonthermal eigenstates of the CA. These dynamics are nonergodic in the sense that certain product states on a periodic classical orbit fail to thermalize, while generic initial states thermalize as expected in a quantum chaotic system. We demonstrate that some signatures of these effects can be probed in quantum simulators based on Rydberg atoms in the blockade regime. These results establish classical CAs as parent models for a class of quantum chaotic systems with rare nonthermal eigenstates.
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Presenters
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Thomas Iadecola
Iowa State University, Dept. of Physics and Astronomy, Iowa State University, Department of Physics and Astronomy, Iowa State University
Authors
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Thomas Iadecola
Iowa State University, Dept. of Physics and Astronomy, Iowa State University, Department of Physics and Astronomy, Iowa State University
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Sagar Vijay
Department of Physics, University of California, Santa Barbara, University of California, Santa Barbara, UC Santa Barbara