Stable three-dimensional vortex solitons of high topological charge in a Rydberg-dressed Bose-Einstein condensate with spin-orbit coupling

Yanchao Zhang, Chao Hang*, Boris A. Malomed, Guoxiang Huang

*Corresponding author for this work

Research output: Contribution to journalArticlepeer-review

Abstract

Stable vortex solitons (VSs) are objects of great interest for fundamental studies and various applications, including particle trapping, microscopy, data encoding, and matter-wave gyroscopes. However, three-dimensional (3D) VSs with high topological charges, supported by self-attractive nonlinearities, are unstable against fragmentation, which eventually leads to internal blowup (supercritical collapse) of the fragments. Here, we propose a scheme for realizing stable 3D VSs with topological charges up to 5 and 6 in the two components of a binary, Rydberg-dressed Bose-Einstein condensate with spin-orbit coupling (SOC). We show that, if the SOC strength exceeds a critical value, the rotational symmetry of the VSs in the transverse plane gets broken, resulting in a separation of the two components. Nevertheless, the VSs with the broken symmetry remain stable. The VS stability domains are identified in the system's parameter space. Moreover, application of torque to the stable VSs sets them in the state of robust gyroscopic precession.

Original languageEnglish
Article number024205
JournalPhysical Review E
Volume111
Issue number2
DOIs
StatePublished - Feb 2025

Funding

FundersFunder number
National Natural Science Foundation of China12374303
Science and Technology Commission of Shanghai Municipality2019SHZDZX01
Israel Science Foundation1695/22

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