DOE OSTI · 2901063
Efficiently Measuring đť‘‘-Wave Pairing and Beyond in Quantum Gas Microscopes
Abstract
Understanding the mechanism of high-temperature superconductivity is among the most important problems in physics, one for which quantum simulation can provide new insights. However, it remains challenging to characterize superconductivity in existing cold-atom quantum simulation platforms. Here, in this work, we introduce a protocol for measuring a broad class of observables in fermionic quantum gas microscopes, including long-range superconducting pairing correlations (after a repulsive-to-attractive mapping). The protocol only requires global controls followed by site-resolved particle number measurements—capabilities that have been already demonstrated in multiple experiments—and is designed by analyzing the Hilbert space of fermions on two sites. The protocol is sample-efficient and we further optimize our pulses for robustness to experimental imperfections such as lattice inhomogeneity. Our Letter introduces a general tool for manipulating quantum states on optical lattices, enhancing their ability to tackle problems such as high-temperature superconductivity.
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Mark, Daniel K. [Massachusetts Inst. of Technology (MIT), Cambridge, MA (United States)] (ORCID:0000000250175218), Hu, Hong-Ye [Harvard Univ., Cambridge, MA (United States)] (ORCID:000000015841831X), Kwan, Joyce [Harvard Univ., Cambridge, MA (United States)] (ORCID:0009000502544751), Kokail, Christian [Harvard Univ., Cambridge, MA (United States); Smithsonian Astrophysical Observatory, Cambridge, MA (United States)], Choi, Soonwon [Massachusetts Inst. of Technology (MIT), Cambridge, MA (United States)] (ORCID:000000021247062X), Yelin, Susanne F. [Harvard Univ., Cambridge, MA (United States)] (ORCID:0000000316559151). 2025-09-17. Efficiently Measuring đť‘‘-Wave Pairing and Beyond in Quantum Gas Microscopes. https://doi.org/10.1103/dqyf-kl8x
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