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    Lattice Unitarity: Saturated Collisional Resistivity in Hubbard Metals

    Frank Corapi1,*, Robyn T. Learn1,*, Benjamin Driesen1, Antoine Lefebvre2, Xavier Leyronas2, Frédéric Chevy2,3, Cora J. Fujiwara1,4, and Joseph H. Thywissen1

    • *These authors contributed equally to this work.

    Phys. Rev. Lett. 136, 213401 – Published 26 May, 2026

    DOI: https://doi.org/10.1103/bhw8-p536

    Abstract

    We investigate the interaction-induced resistivity of ultracold fermions in a three-dimensional optical lattice. In situ observations of transport dynamics enable the determination of real and imaginary resistivity. In the strongly interacting metallic regime, we observe a striking saturation of the current-dissipation rate toward a value that is independent of the interaction strength. This phenomenon is quantitatively captured by a dissipation model that uses a renormalized two-body scattering matrix. We further measure the temperature dependence of resistivity in the strongly interacting limit and discuss the predicted asymptotic high-temperature behavior. Our results provide a clear microscopic understanding of bounded resistivity of low-density metals, thus providing a useful benchmark for studies of strongly correlated atomic and electronic systems.

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