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Quantum algorithms for cooling: a simple case study

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arxiv 2503.24330 v2 pith:HXD7MBUH submitted 2025-03-31 quant-ph

classification quant-ph
keywords coolingquantumalgorithmsnoisepreparationdissipativeenhancemodel
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Preparation of low-energy quantum many-body states has a wide range of applications in quantum information processing and condensed matter physics. Quantum cooling algorithms offer a promising alternative to other methods based, for instance, on variational and adiabatic principles, or on dissipative state preparation. In this work, we investigate a set of cooling algorithms in a simple, solvable fermionic model which allows us to identify the mechanisms which underlie the cooling process and, also, those which prevent it. We derive analytical expressions for the cooling dynamics, steady states, and cooling rates in the weak coupling limit. We find that multi-frequency and randomized cycle strategies can significantly enhance the performance of the quantum algorithm and circumvent some of the obstacles. We also analyze the effects of noise and evaluate the conditions under which cooling remains feasible. Furthermore, we present optimized cooling protocols that can significantly enhance cooling performance in the presence of noise. Additionally, we compare cooling and dissipative state preparation and show that, in the model analyzed here, cooling generally achieves lower energies and is more resilient to noise.

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Cited by 1 Pith paper

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score.

  1. Beyond Lindblad Dynamics: Rigorous Guarantees for Thermal and Ground State Preservation under System Bath Interactions

    quant-ph 2025-12 conditional novelty 7.0 of 10

    System–bath interaction state preparation is shown to approximately preserve thermal and ground states at constant (or larger) coupling, with mixing time O(Γ^{-2}) and total runtime eO(n^7/ε^2) for several models.

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