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    Emergent viscous hydrodynamics from a single quantum particle

    Zhi-Li Zhou1,*, Mauricio Hippert2,3,†, Nicki Mullins1,‡, and Jorge Noronha1,§

    • *Contact author: zhiliz2@illinois.edu
    • †Contact author: hippert@cbpf.br
    • ‡Contact author: nickim2@illinois.edu
    • §Contact author: jn0508@illinois.edu

    Phys. Rev. E 113, 014101 – Published 5 January, 2026

    DOI: https://doi.org/10.1103/f61m-9fqj

    Abstract

    We investigate an explicit example of how spatial decoherence can lead to hydrodynamic behavior in the late-time, long-wavelength regime of open quantum systems. We focus on the case of a single nonrelativistic quantum particle linearly coupled to a thermal bath of noninteracting harmonic oscillators at temperature T, a la Caldeira and Leggett. Taking advantage of decoherence in the position representation, we expand the reduced density matrix in powers of the off-diagonal spatial components, so that high-order terms are suppressed at late times. Truncating the resulting power series at second order leads to a set of dissipative transient hydrodynamic equations similar to the nonrelativistic limit of equations widely used in simulations of the quark-gluon plasma formed in ultrarelativistic heavy-ion collisions. Transport coefficients are directly determined by the damping constant γ, which quantifies the influence of the environment. The asymptotic limit of our hydrodynamic equations reduces to the celebrated Navier-Stokes equations for a compressible fluid in the presence of a drag force. Our results shed new light on the onset of hydrodynamic behavior in open quantum systems where a system with few degrees of freedom is coupled to a large thermal environment.

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