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Area of Science:

  • Condensed Matter Physics
  • Quantum Simulation
  • Atomic Physics

Background:

  • High-temperature superconductivity remains a significant unsolved problem in physics.
  • Characterizing superconductivity in current cold-atom quantum simulation platforms is challenging.

Purpose of the Study:

  • To introduce a novel protocol for measuring observables in fermionic quantum gas microscopes.
  • To enable the characterization of superconductivity, specifically long-range pairing correlations.

Main Methods:

  • The protocol utilizes global controls and site-resolved particle number measurements.
  • It involves a repulsive-to-attractive mapping to probe superconducting correlations.
  • Analysis of the Hilbert space of fermions on two sites informed the protocol design.

Main Results:

  • The protocol is demonstrated to be sample-efficient.
  • Optimized pulses enhance robustness against experimental imperfections like lattice inhomogeneity.
  • It provides a general tool for manipulating quantum states on optical lattices.

Conclusions:

  • This new protocol significantly enhances the capability of quantum simulation platforms.
  • It offers a pathway to gain new insights into the mechanism of high-temperature superconductivity.