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    Dissipation in fermionic two-body continuous-time quantum walk under the steepest entropy ascent formalism

    Rohit Kishan Ray1,2,*, R. Srikanth2,†, and Sonjoy Majumder3,‡

    • *Contact author: rkray@ibs.re.kr
    • †Contact author: srik@ppisr.res.in
    • ‡Contact author: sonjoym@phy.iitkgp.ac.in

    Phys. Rev. E 112, 044120 – Published 14 October, 2025

    DOI: https://doi.org/10.1103/ftsw-cwbq

    Abstract

    Quantum walks play a crucial role in quantum algorithms and computational problems. Many-body quantum walks can reveal and exploit quantum correlations that are unavailable for single-walker cases. Studying quantum walks under noise and dissipation, particularly in multiwalker systems, has significant implications. In this context, we use a thermodynamically consistent formalism of dissipation modeling, namely the steepest entropy ascent (SEA) formalism. We analyze two spinless fermionic continuous-time walkers on a one-dimensional graph with tunable Hubbard and extended Hubbard-like interactions. By contrasting SEA-driven dynamics with unitary evolution, we systematically investigate how interaction strengths modulate thermalization and entropy production. Our findings highlight the relevance of the SEA formalism in modeling nonlinear dissipation in many-body quantum systems and its implications for quantum thermalization.

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