Observation of emergent scaling of spin–charge correlations at the onset of the pseudogap
Abstract
In strongly correlated materials, interacting electrons are entangled and form collective quantum states, resulting in rich low-temperature phase diagrams. Notable examples include cuprate superconductors, in which superconductivity emerges at low doping out of an unusual “pseudogap” metallic state above the critical temperature. The Fermi–Hubbard model, describing a wide range of phenomena associated with strong electron correlations, still offers major computational challenges despite its simple formulation. In this context, ultracold atoms quantum simulators have provided invaluable insights into the microscopic nature of correlated quantum states. Here, we use a quantum gas microscope Fermi–Hubbard simulator to explore a wide range of dopings and temperatures in a regime where a pseudogap is known to develop. By measuring multipoint correlation functions up to fifth order, we uncover a universal scaling behavior in magnetic and higher-order spin–charge correlations characterized by a doping-dependent temperature scale. Accurate comparisons with determinant Quantum Monte Carlo and Minimally Entangled Typical Thermal States simulations confirm that this temperature scale is comparable to the pseudogap temperature T ∗ . Our quantitative findings reveal a qualitative behavior of magnetic properties and spin–charge correlations in an emergent pseudogap and pave the way toward the exploration of charge pairing and collective phenomena expected at lower temperatures.
Article Details
Journal Info
Proceedings of the National Academy of Sciences
National Academy of Sciences
Authors (15)
Thomas Chalopin
Petar Bojović
Si Wang
Titus Franz
Aritra Sinha
Max Planck Institute for the Physics of Complex Systems
Zhenjiu Wang
Fakultät für Physik
Dominik Bourgund
Johannes Obermeyer
Fabian Grusdt
Annabelle Bohrdt
Lode Pollet
Munich Center for Quantum Science and Technology
Alexander Wietek
Max Planck Institute for the Physics of Complex Systems
Antoine Georges
Center for Computational Quantum Physics, Flatiron Institute
Timon Hilker
Immanuel Bloch