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    Single-site entanglement as a marker for quantum phase transitions at nonzero temperatures

    Willdauany C. de Freitas da Silva1,2, Andressa R. Medeiros-Silva1,3,4, Rubem Mondaini3,5, Vivian V. França6, and Thereza Paiva1

    Phys. Rev. A 112, 062436 – Published 17 December, 2025

    DOI: https://doi.org/10.1103/l8nx-c6nd

    Abstract

    Entanglement has been widely investigated in condensed-matter systems since they are considered good candidates for developing quantum technologies. Additionally, entanglement is a powerful tool to explore quantum phase transitions in strongly correlated systems, with the von Neumann entropy being considered a proper measure of quantum entanglement for pure bipartite systems. For lattice systems, in particular, the single-site entanglement quantifies how much information about the quantum state of the remaining sites can be obtained by a measurement at a single site. Here, we use quantum Monte Carlo calculations to obtain the average single-site entanglement for the two-dimensional Hubbard model in different geometries, probing the effects of varying temperature and interaction strength. We find that the average single-site entanglement signals the quantum phase transitions in such systems, allowing us to identify and characterize signatures of quantum phase transitions even at finite temperatures. We also analyze the relation between entanglement and magnetic susceptibility: in all the geometries considered, we find regimes in which the quantities are roughly linearly connected, revealing their link to the Mott transition.

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