Magnetically mediated hole pairing in fermionic ladders of ultracold atoms
Hirthe, Sarah and Chalopin, Thomas and Bourgund, Dominik and Bojović, Petar and Bohrdt, Annabelle and Demler, Eugene and Grusdt, Fabian and Bloch, Immanuel and Hilker, Timon A. (2023) Magnetically mediated hole pairing in fermionic ladders of ultracold atoms. Nature, 613 (7944). pp. 463-467. ISSN 0028-0836 (https://doi.org/10.1038/s41586-022-05437-y)
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Abstract
Conventional superconductivity emerges from pairing of charge carriers—electrons or holes—mediated by phonons. In many unconventional superconductors, the pairing mechanism is conjectured to be mediated by magnetic correlations, as captured by models of mobile charges in doped antiferromagnets. However, a precise understanding of the underlying mechanism in real materials is still lacking and has been driving experimental and theoretical research for the past 40 years. Early theoretical studies predicted magnetic-mediated pairing of dopants in ladder systems, in which idealized theoretical toy models explained how pairing can emerge despite repulsive interactions. Here we experimentally observe this long-standing theoretical prediction, reporting hole pairing due to magnetic correlations in a quantum gas of ultracold atoms. By engineering doped antiferromagnetic ladders with mixed-dimensional couplings, we suppress Pauli blocking of holes at short length scales. This results in a marked increase in binding energy and decrease in pair size, enabling us to observe pairs of holes predominantly occupying the same rung of the ladder. We find a hole–hole binding energy of the order of the superexchange energy and, upon increased doping, we observe spatial structures in the pair distribution, indicating repulsion between bound hole pairs. By engineering a configuration in which binding is strongly enhanced, we delineate a strategy to increase the critical temperature for superconductivity.
ORCID iDs
Hirthe, Sarah, Chalopin, Thomas, Bourgund, Dominik, Bojović, Petar, Bohrdt, Annabelle, Demler, Eugene, Grusdt, Fabian, Bloch, Immanuel and Hilker, Timon A. ORCID: https://orcid.org/0000-0002-1012-5750;-
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Item type: Article ID code: 91908 Dates: DateEvent19 January 2023Published18 January 2023Published Online11 October 2022AcceptedSubjects: Science > Physics > Atomic physics. Constitution and properties of matter Department: Faculty of Science > Physics Depositing user: Pure Administrator Date deposited: 29 Jan 2025 08:22 Last modified: 29 Jan 2025 08:22 URI: https://strathprints.strath.ac.uk/id/eprint/91908