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    Eigenstate Thermalization Hypothesis Correlations via Nonlinear Hydrodynamics

    Jiaozi Wang1,*, Ruchira Mishra2, Tian-Hua Yang3, Luca V. Delacrétaz2, and Silvia Pappalardi4,†

    • 1University of Osnabrück, Department of Mathematics/Computer Science/Physics, D-49076 Osnabrück, Germany
    • 2Kadanoff Center for Theoretical Physics and James Franck Institute, University of Chicago, Chicago, Illinois 60637, USA
    • 3Department of Physics, Princeton University, Princeton, New Jersey 08544, USA
    • 4Institut für Theoretische Physik, Universität zu Köln, Zülpicher Straße 77, 50937 Köln, Germany

    • *Contact author: jiaowang@uos.de
    • †Contact author: pappalardi@thp.uni-koeln.de

    Phys. Rev. Lett. 136, 130402 – Published 31 March, 2026

    DOI: https://doi.org/10.1103/prv4-948b

    Abstract

    The thermalizing dynamics of many-body systems is often described through the lens of the eigenstate thermalization hypothesis (ETH). ETH postulates that the statistical properties of observables, when expressed in the energy eigenbasis, are described by smooth functions, which also describe correlations among the matrix elements. However, the form of these functions is usually left undetermined, constituting a key missing component of the ETH framework. In this Letter, we investigate the structure of such smooth functions by focusing on their Fourier transform, recently identified as free cumulants. Using nonlinear hydrodynamics, we provide a prediction for the universal scaling of the late-time behavior of time-ordered free cumulants in the thermodynamic limit. The prediction is further corroborated by large-scale numerical simulations of several nonintegrable one-dimensional spin models that exhibit diffusive transport behavior. Good agreement is observed in both infinite and finite-temperature regimes and for a collection of local observables. Our results indicate that the smooth multipoint correlation functions within the ETH framework admit a universal hydrodynamic description at low frequencies.

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