Local control and mixed dimensions: exploring high-temperature superconductivity in optical lattices

Henning Schlömer, Hannah Lange, Titus Franz, Thomas Chalopin, Petar Bojović, Si Wang, Immanuel Bloch, Timon A. Hilker, Fabian Grusdt, Annabelle Bohrdt

Research output: Contribution to journalArticlepeer-review

1 Citation (Scopus)

Abstract

The simulation of high-temperature superconducting materials by implementing strongly correlated fermionic models in optical lattices is one of the major objectives in the field of analog quantum simulation. Here we show that local control and optical bilayer capabilities combined with spatially resolved measurements create a versatile toolbox to study fundamental properties of both nickelate and cuprate high-temperature superconductors. On the one hand, we present a scheme to implement a mixed-dimensional (mixD) bilayer model that has been proposed to capture the essential pairing physics of pressurized bilayer nickelates. This allows for the long-sought realization of a state with long-range superconducting order in current lattice quantum simulation machines. In particular, we show how coherent pairing correlations can be accessed in a partially particle-hole transformed and rotated basis. On the other hand, we demonstrate that control of local gates enables the observation of 𝑑-wave pairing order in the two-dimensional (single-layer) repulsive Fermi-Hubbard model through the simulation of a system with attractive interactions. Lastly, we introduce a scheme to measure momentum-resolved dopant densities, providing access to observables complementary to solid-state experiments—which is of particular interest for future studies of the enigmatic pseudogap phase appearing in cuprates.
Original languageEnglish
Article number040341
Number of pages25
JournalPRX Quantum
Volume5
Issue number4
DOIs
Publication statusPublished - 12 Dec 2024

Funding

This research was funded by the Deutsche Forschungsgemeinschaft (DFG, German Research Foundation) under Germany's Excellence Strategy—EXC-2111—390814868, by the European Research Council (ERC) under the European Union's Horizon 2020 research and innovation programme (Grant Agreement No. 948141 — ERC Starting Grant SimUcQuam), the Max Planck Society (MPG), the Horizon Europe programme HORIZON-CL4-2022 QUANTUM-02-SGA (project 101113690, PASQuanS2.1) and the German Federal Ministry of Education and Research (BMBF grant agreement 13N15890, FermiQP). H.L. acknowledges support by the International Max Planck Research School for Quantum Science and Technology (IMPRS-QST).

Keywords

  • cold atoms and matter waves
  • cold gases in optical lattices
  • cuprates
  • high-temperature superconductors
  • nickelates
  • strongly correlated systems
  • ultracold gases

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