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    Quantum transport in the one-dimensional Hubbard model: Drude weights and Seebeck effect

    Jia-Jia Luo1,2, Sagarika Basak3,4, Han Pu3,*, and Xi-Wen Guan1,5,6,†

    • 1Innovation Academy for Precision Measurement Science and Technology, Chinese Academy of Sciences, Wuhan 430071, People's Republic of China
    • 2University of Chinese Academy of Sciences, Beijing 100049, People's Republic of China
    • 3Department of Physics and Astronomy, and Smalley-Curl Institute, Rice University, Houston, Texas 77251-1892, USA
    • 4Homer L. Dodge Department of Physics and Astronomy, The University of Oklahoma, 440 W. Brooks Street, Norman, Oklahoma 73019, USA
    • 5Hefei National Laboratory, Hefei 230088, People's Republic of China
    • 6Department of Fundamental and Theoretical Physics, Research School of Physics, Australian National University, Canberra ACT 0200, Australia

    • *Contact author: hpu@rice.edu
    • †Contact author: xiwen.guan@anu.edu.au

    Phys. Rev. B 112, 235414 – Published 16 December, 2025

    DOI: https://doi.org/10.1103/wl94-p2cd

    Abstract

    The Drude weight (DW) is an essential quantity that characterizes the quantum transport properties of many-body systems. However, a rigorous understanding and exact computation of DWs, particularly for strongly correlated systems with doping, still remain elusive. In this article, taking advantage of the quantum integrability, we calculate exactly the DWs and Seebeck effect for generic filling factor in one-dimensional Fermi-Hubbard model with arbitrary interaction strengths and magnetic fields. We build up its intrinsic connection to the Luttinger parameters and derive universal scaling laws for DWs across phase transitions. Our results provide a deep understanding of mutual influences in transport between the spin and the charge degrees of freedom, showing a counterintuitive subtle spin-charge coupling effect and uncovering the microscopic origin of the (spin) Seebeck effects in thermal conductivity. Finally, we propose an experimental protocol to measure the DWs in ultracold atomic systems.

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