Strange metal transport from coupling to fluctuating spins
cond-mat.str-el
Submitted: 2024-12-05
Updated: 2026-04-12
Comments: 8 pages, 3 figures
Journal ref: Nature Physics (2026)
DOI: 10.1038/s41567-026-03441-x
License: http://creativecommons.org/licenses/by/4.0/
The gist: Metals hosting strong electronic interactions, including high-temperature superconductors, behave in ways that do not conform to normal Fermi liquid theory.
Terminology
Abstract
Metals hosting strong electronic interactions, including high-temperature superconductors, behave in ways that do not conform to normal Fermi liquid theory. To pinpoint the microscopic origin of this strange metal behavior, here we reexamine the d.c. and frequency-dependent conductivity of the two-dimensional t-J model taking advantage of recent improvements made on the finite temperature Lanczos method, enabling numerically exact calculations at unprecedentedly low temperatures and high spectral resolution. We find that strange metallicity is pervasive in the temperature-doping phase diagram whenever anti-ferromagnetic order is suppressed, and advocate that key insights on Planckian relaxation can be gained by extending the study to the frequency and time domain. Our results indicate that Planckian behavior does not originate from the scattering properties of the current carriers, being instead rooted in the quantum statistical nature of the charge response.
Sources
- Probing the pseudogap and beyond: examining single-particle properties of the hole- and electron-doped Hubbard model
- Antiferromagnetism and Tightly Bound Cooper Pairs Induced by Kinetic Frustration
- Pseudogap in a Fermi-Hubbard quantum simulator
Related papers
- Microscopic Constructions of the BF+AAB Topological Field Theory and Borromean-Rings Braiding in (3+1) Dimensions
- Transport in the emergent Bose liquid: Bad metal, strange metal, and weak insulator, all in one system
- Magnetic field induced phenomena in Kitaev spin liquids
- Electronic Structure and Dynamical Correlations in Antiferromagnetic BiFeO 3
- Dynamics and stability of U(1) spin liquids beyond mean-field theory: Triangular-lattice J 1 - J 2 Heisenberg model
- Topological Mixed States: Phases of Matter from Axiomatic Approaches