English

Spontaneous Formation of Star-Shaped Surface Patterns in a Driven Bose-Einstein Condensate

Quantum Gases 2021-09-15 v2 Pattern Formation and Solitons Atomic Physics Quantum Physics

Abstract

We observe experimentally the spontaneous formation of star-shaped surface patterns in driven Bose-Einstein condensates. Two-dimensional star-shaped patterns with ll-fold symmetry, ranging from quadrupole (l=2l=2) to heptagon modes (l=7l=7), are parametrically excited by modulating the scattering length near the Feshbach resonance. An effective Mathieu equation and Floquet analysis are utilized, relating the instability conditions to the dispersion of the surface modes in a trapped superfluid. Identifying the resonant frequencies of the patterns, we precisely measure the dispersion relation of the collective excitations. The oscillation amplitude of the surface excitations increases exponentially during the modulation. We find that only the l=6l=6 mode is unstable due to its emergent coupling with the dipole motion of the cloud. Our experimental results are in excellent agreement with the mean-field framework. Our work opens a new pathway for generating higher-lying collective excitations with applications, such as the probing of exotic properties of quantum fluids and providing a generation mechanism of quantum turbulence.

Keywords

Cite

@article{arxiv.2105.09794,
  title  = {Spontaneous Formation of Star-Shaped Surface Patterns in a Driven Bose-Einstein Condensate},
  author = {K. Kwon and K. Mukherjee and S. Huh and K. Kim and S. I. Mistakidis and D. K. Maity and P. G. Kevrekidis and S. Majumder and P. Schmelcher and J. -y. Choi},
  journal= {arXiv preprint arXiv:2105.09794},
  year   = {2021}
}

Comments

5 pages, 4 figures

R2 v1 2026-06-24T02:18:20.564Z