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Nonlinear Fluctuating Hydrodynamics from Interacting Noisy Quantum Matter
arXiv
Authors: Alexios Christopoulos, Jo\~ao Costa, Stefano Scopa, Jacopo De Nardis, Zala Lenar\v{c}i\v{c}, Denis Bernard, Tony Jin
Year
2026
Paper ID
76138
Status
Preprint
Abstract Read
~2 min
Abstract Words
144
Citations
N/A
Abstract
A universal characterization of non-equilibrium steady states in interacting quantum many-body systems remains one of the central challenges of statistical physics. Here, we address this problem for a paradigmatic model of diffusive interacting quantum matter---the boundary-driven XXZ spin chain with bulk dephasing---and derive, directly from its microscopic Lindblad dynamics, an emergent classical Macroscopic Fluctuation Theory (MFT) governing its large-scale fluctuations. Crucially, the resulting hydrodynamics carries a density-dependent diffusivity and mobility as the fingerprint of interactions. This effective description enables the exact computation of the stationary density profile, long-range correlations, and the full counting statistics of the current, in excellent agreement with tensor-network simulations. Our work demonstrates that noisy quantum many-body systems can realize the universality class of genuinely interacting diffusive matter, beyond the constant-diffusivity class of the symmetric simple exclusion process, and establishes MFT as a powerful universal framework for interacting diffusive quantum systems.
Why This Paper Matters
- This paper contributes to the Quantum Networks research area in the Quantum Articles archive.
- It adds a 2026 reference point for readers tracking recent quantum research.
- A universal characterization of non-equilibrium steady states in interacting quantum many-body systems remains one of the central challenges of statistical physics.
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