Controlled generation of 3D vortices in driven atomic Josephson junctions

成果类型:
Article
署名作者:
Singh, Vijay Pal; Mathey, Ludwig; Ott, Herwig; Amico, Luigi
署名单位:
Technology Innovation Institute; University of Hamburg; University of Hamburg; University of Hamburg; RPTU University Kaiserslautern
刊物名称:
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA
ISSN/ISSBN:
0027-8424; 1091-6490
DOI:
10.1073/pnas.2535111123
发表日期:
2026-07-14
页码:
e2535111123
关键词:
ultracold atoms driven Josephson junctions Jones-Roberts excitations topological defects SOLITARY WAVE SOLUTIONS bose condensate VORTEX RINGS shapiro steps quantum turbulence MOTIONS RECONNECTION propagation DYNAMICS
摘要:
We propose an ac-driven atomic Josephson junction as a clean and tunable source of three-dimensional (3D) solitary waves in quantum fluids. Depending on the height of the junction barrier, the emitted excitations appear as vortex rings at low velocity or vorticity-free rarefaction pulses near the sound velocity, thus spanning the complete Jones-Roberts family of solitons. The Shapiro-step phenomenon renders the emission deterministic: on the first, second, third Shapiro steps, the junction ejects one, two, and three solitary excitations per drive cycle. This enables controlled generation of single- and multiexcitation configurations, allowing detailed studies of the full crossover between vortex rings and rarefaction pulses and their interaction dynamics. By Shapiro phase locking, multiexcitations are emitted in succession and interact, revealing leapfrogging motion of two and three coaxial rings and their decay via boundary-assisted, sound-mediated processes. This ac-driven protocol establishes a compact and reproducible platform for generating, classifying, and controlling 3D solitonic excitations, paving the way for precision studies of nonlinear vortex dynamics, dissipation, and quantum turbulence in trapped superfluids.
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