Unifying fast scrambling, thermalization and entanglement through the measurement of FOTOCs in the Dicke model
R. J. Lewis-Swan, A. Safavi-Naini, J. J. Bollinger, and A. M. Rey

TL;DR
This paper demonstrates that FOTOCs can serve as a unifying diagnostic tool for understanding quantum scrambling, entanglement, and thermalization in the Dicke model, linking quantum chaos with classical Lyapunov exponents.
Contribution
It introduces the use of FOTOCs in the Dicke model to connect quantum information scrambling, entanglement, and chaos, providing a practical experimental approach.
Findings
FOTOCs measure spin-phonon Renyi entropy and thermalization.
FOTOCs reveal fast scrambling in chaotic regimes.
Explicit relation between quantum and classical Lyapunov exponents.
Abstract
Scrambling of quantum information is the process by which information initially stored in the local degrees of freedom of a quantum many-body system spreads over its many-body degrees of freedom, becoming inaccessible to local probes and thus apparently lost. Scrambling and entanglement are key concepts reconciling seemingly unrelated behaviors including thermalization of isolated quantum systems and information loss in black holes, and have revolutionized our understanding of non-equilibrium phenomena. Here, we demonstrate that a family of fidelity out-of-time-order correlators (FOTOCs), recently measured in a trapped-ion quantum simulator via time reversal of the many-body dynamics followed by a fidelity measurement, can serve as a unifying diagnostic tool that elucidates the intrinsic connection between fast scrambling, volume law entanglement, ergodicity, quantum chaos, and the…
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