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    Quantum information scrambling in strongly disordered Rydberg spin systems

    Maximilian Müllenbach1,2,*, Sebastian Geier2,*, Adrian Braemer2, Eduard J. Braun2, Titus Franz2, Gerhard Zürn2, Matthias Weidemüller2, and Martin Gärttner3,†

    • *These authors contributed equally to this work.
    • †Contact author: martin.gaerttner@uni-jena.de

    Phys. Rev. B 114, 154206 – Published 23 September, 2026

    DOI: https://doi.org/10.1103/v1lm-c87p

    Abstract

    Despite the fact that power-law interactions occur in a plethora of physical systems, their many-body dynamics is far less understood than that of nearest-neighbor interacting systems. Here, we study information scrambling in strongly disordered spin systems with power-law interactions via out-of-time-order correlators (OTOCs). Numerically, we find pronounced differences in the dynamical spreading of OTOCs between nearest-neighbor and power-law interacting systems. This deviation persists even for short-range interactions, opposing the common view that these interactions produce dynamics equivalent to the nearest-neighbor case. In a detailed experimental proposal, tailored but not limited to Rydberg tweezer setups, we present a protocol to extract OTOCs in XXZ Heisenberg spin systems with tunable anisotropy and programmable disorder based on currently available techniques.

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