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    Superdiffusion resilience in Heisenberg chains with two-dimensional interactions on a quantum processor

    Keerthi Kumaran1,2,*, Manas Sajjan2,3,4,*,†, Bibek Pokharel2,5,‡, Kevin Wang6,7, Joe Gibbs8,9, Jeffrey Cohn10, Barbara Jones10,§, Sarah Mostame5,∥, Sabre Kais2,3,4 et al.

    Arnab Banerjee1,2,¶

    • *These authors contributed equally to this work.
    • †Contact author: msajjan@ncsu.edu
    • ‡Contact author: bibek.pokharel@ibm.com
    • §Deceased.
    • ∥Contact author: sarah.mostame@ibm.com
    • Contact author: arnabb@purdue.edu

    Phys. Rev. B 113, 174408 – Published 13 May, 2026

    DOI: https://doi.org/10.1103/j971-h796

    Abstract

    Superdiffusive spin transport in the one-dimensional (1D) Heisenberg model is a key theoretical discovery in nonequilibrium quantum many-body physics. Although extensively studied in 1D systems, the breakdown and sustenance of superdiffusion in two-dimensional (2D) lattices with integrability-breaking terms, as found in real materials, remains an open question. To address this, we develop a toy model that extends the 1D Heisenberg model with a representative set of 2D interaction types and tunable strengths. Our model exhibits varying degrees of superdiffusion breakdown depending on the interaction type, spanning ballistic to diffusive regimes. We establish and justify a hierarchy of 2D interactions based on their resilience against superdiffusion breakdown: Heisenberg >XX> Ising. This precise control over the superdiffusive behavior also enables rigorous benchmarking of quantum hardware, and our simulations on IBM's Heron devices confirm the hardware's ability to accurately capture these many-body nonequilibrium phenomena. Overall, our results are relevant not only to simulating superdiffusion in real materials, such as the 1D Heisenberg compound KCuF3, which contains modest nonintegrable 2D terms, but also to extending superdiffusive behavior to larger 2D qubit lattices and other 2D materials.

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