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Dynamical excitation of maxon and roton modes in a Rydberg-dressed Bose-Einstein condensate

McCormack, Gary; Nath, Rejish; Li, Weibin

Dynamical excitation of maxon and roton modes in a Rydberg-dressed Bose-Einstein condensate Thumbnail


Authors

Gary McCormack

Rejish Nath

WEIBIN LI WEIBIN.LI@NOTTINGHAM.AC.UK
Associate Professor



Abstract

We investigate the dynamics of a three-dimensional Bose-Einstein condensate of ultracold atomic gases with a soft-core shape long-range interaction, which is induced by laser dressing the atoms to a highly excited Rydberg state. For a homogeneous condensate, the long-range interaction drastically alters the dispersion relation of the excitation, supporting both roton and maxon modes. Rotons are typically responsible for the creation of supersolids, while maxons are normally dynamically unstable in BECs with dipolar interactions. We show that maxon modes in the Rydberg-dressed condensate, on the contrary, are dynamically stable. We find that the maxon modes can be excited through an interaction quench, i.e. turning on the soft-core interaction instantaneously. The emergence of the maxon modes is accompanied by oscillations at high frequencies in the quantum depletion, while rotons lead to much slower oscillations. The dynamically stable excitation of the roton and maxon modes leads to persistent oscillations in the quantum depletion. Through a self-consistent Bogoliubov approach, we identify the dependence of the maxon mode on the soft-core interaction. Our study shows that maxon and roton modes can be excited dynamically and simultaneously by quenching Rydberg-dressed long-range interactions. This is relevant to current studies in creating and probing exotic states of matter with ultracold atomic gases.

Citation

McCormack, G., Nath, R., & Li, W. (2020). Dynamical excitation of maxon and roton modes in a Rydberg-dressed Bose-Einstein condensate. Physical Review A, 102(2), Article 023319. https://doi.org/10.1103/physreva.102.023319

Journal Article Type Article
Acceptance Date Jul 14, 2020
Online Publication Date Aug 19, 2020
Publication Date Aug 19, 2020
Deposit Date Jul 15, 2020
Publicly Available Date Aug 19, 2020
Journal Physical Review A
Print ISSN 2469-9926
Electronic ISSN 2469-9934
Publisher American Physical Society
Peer Reviewed Peer Reviewed
Volume 102
Issue 2
Article Number 023319
DOI https://doi.org/10.1103/physreva.102.023319
Public URL https://nottingham-repository.worktribe.com/output/4768565
Publisher URL https://journals.aps.org/pra/abstract/10.1103/PhysRevA.102.023319

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