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dc.contributor.authorVenu, Vijin
dc.contributor.authorXu, Peihang
dc.contributor.authorMamaev, Mikhail
dc.contributor.authorCorapi, Frank
dc.contributor.authorBilitewski, Thomas
dc.contributor.authorD'Incao, Jose P.
dc.contributor.authorFujiwara, Cora J.
dc.contributor.authorRey, Ana Maria
dc.contributor.authorThywissen, Joseph H.
dc.date.accessioned2023-08-28T14:55:50Z
dc.date.available2023-08-28T14:55:50Z
dc.date.issued2022-05-27
dc.identifieroksd_venu_observation_of_unitary_p_2022.pdf
dc.identifier.citationVenu, V., Xu, P., Mamaev, M., Corapi, F., Bilitewski, T., D'Incao, J.P., Fujiwara, C.J., Rey, A.M., Thywissen, J.H. (2022). Observation of unitary p-wave interactions between fermions in an optical lattice. Nature, 613, 262-267. https://doi.org/10.48550/arxiv.2205.13506
dc.identifier.urihttps://hdl.handle.net/11244/338982
dc.description.abstractExchange-antisymmetric pair wavefunctions in fermionic systems can give rise to unconventional superconductors and superfluids with non-trivial transport properties. The realisation of these states in controllable quantum systems, such as ultracold gases, could enable new types of quantum simulations, topological quantum gates, and exotic few-body states. However, p-wave and other antisymmetric interactions are weak in naturally occurring systems, and their enhancement via Feshbach resonances in ultracold systems has been limited by three-body loss. In this work, we create isolated pairs of spin-polarised fermionic atoms in a multi-orbital three-dimensional optical lattice. We spectroscopically measure elastic p-wave inter- action energies of strongly interacting pairs of atoms near a magnetic Feshbach resonance, and find pair lifetimes to be up to fifty times larger than in free space. We demonstrate that on-site inter- action strengths can be widely tuned by the magnetic field and confinement strength, but collapse onto a universal single-parameter curve when rescaled by the harmonic energy and length scales of a single lattice site. Since three-body processes are absent within our approach, we are able to observe elastic unitary p-wave interactions for the first time. We take the first steps towards coherent temporal control via Rabi oscillations between free-atom and interacting-pair states. All experimental observations are compared both to an exact solution for two harmonically confined atoms interacting via a p-wave pseudopotential, and to numerical solutions using an ab-initio interaction potential. The understanding and control of on-site p-wave interactions provides a necessary component for the assembly of multi-orbital lattice models, and a starting point for investigations of how to protect such a system from three-body recombination even in the presence of weak tunnelling, for instance using Pauli blocking and lattice engineering. This combination will open a path for the exploration of new states of matter and many-body phenomena enabled by elastic p-wave interactions.
dc.formatapplication/pdf
dc.languageen_US
dc.relation.urihttp://dx.doi.org/10.1038/s41586-022-05405-6
dc.rightsThis material has been previously published. In the Oklahoma State University Library's institutional repository this version is made available through the open access principles and the terms of agreement/consent between the author(s) and the publisher. The permission policy on the use, reproduction or distribution of the material falls under fair use for educational, scholarship, and research purposes. Contact Digital Resources and Discovery Services at lib-dls@okstate.edu or 405-744-9161 for further information.
dc.titleObservation of unitary p-wave interactions between fermions in an optical lattice
dc.date.updated2023-08-25T21:04:58Z
osu.filenameoksd_venu_observation_of_unitary_p_2022
dc.identifier.doi10.48550/arxiv.2205.13506
dc.description.departmentPhysics
dc.type.genrePreprint
dc.type.materialText
dc.subject.keywordsquantum physics
dc.subject.keywordsatomic, molecular and optical physics
dc.subject.keywordsphysical sciences
dc.subject.keywordsgeneral science and technology
dc.identifier.authorORCID: 0000-0002-9971-1835 (Bilitewski, Thomas)
dc.identifier.authorScopusID: 55413892200 (Bilitewski, Thomas)


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