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    Boosting thermalization of classical and quantum many-body systems

    Jin-Fu Chen1,2,*, Kshiti Sneh Rai1,2, Patrick Emonts1,2,3,4, Donato Farina5,6, Marcin Płodzień6, Przemyslaw Grzybowski6,7, Maciej Lewenstein6,8, and Jordi Tura1,2,†

    • *Contact author: jinfuchen@lorentz.leidenuniv.nl
    • †Contact author: tura@lorentz.leidenuniv.nl

    Phys. Rev. B 113, 184313 – Published 11 May, 2026

    DOI: https://doi.org/10.1103/r43j-qfj5

    Abstract

    Understanding and optimizing the relaxation dynamics of many-body systems is essential both for foundational studies in quantum thermodynamics and for applications such as quantum simulation and quantum computing. Efficient preparation of thermal states of a many-body Hamiltonian is governed by the spectral properties of the associated Lindbladian, in particular its spectral gap, which determines the minimum relaxation rate. In this work, we develop a systematic framework for constructing Lindbladians that prepare thermal states. Our approach reveals a simple relation between the relaxation dynamics at finite and infinite temperatures. The framework is scalable to larger system sizes when implemented using tensor-network methods. We find that efficient thermalization requires that the relaxation dynamics respect the symmetries of the thermal state, which reduces the number of free parameters. By applying gradient-based optimization to the Lindbladians, we enhance the spectral gap and thereby boost thermalization. When applied to both classical and quantum spin models, our method demonstrates a substantial enhancement of the spectral gap. For larger system sizes, our approach provides a variational upper bound and enables a certified lower bound on the spectral gap.

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