From single-particle excitations to sound waves in a box-trapped atomic Bose-Einstein condensate
Abstract
We experimentally and theoretically investigate the lowest-lying axial excitation of an atomic Bose-Einstein condensate in a cylindrical box trap. By tuning the atomic density, we observe how the nature of the mode changes from a single-particle excitation (in the low-density limit) to a sound wave (in the high-density limit). Throughout this crossover the measured mode frequency agrees with Bogoliubov theory. Using approximate low-energy models we show that the evolution of the mode frequency is directly related to the interaction-induced shape changes of the condensate and the excitation. Finally, if we create a large-amplitude excitation, and then let the system evolve freely, we observe that the mode amplitude decays non-exponentially in time; this nonlinear behaviour is indicative of interactions between the elementary excitations, but remains to be quantitatively understood.
Keywords
Cite
@article{arxiv.1810.08195,
title = {From single-particle excitations to sound waves in a box-trapped atomic Bose-Einstein condensate},
author = {Samuel J. Garratt and Christoph Eigen and Jinyi Zhang and Patrik Turzák and Raphael Lopes and Robert P. Smith and Zoran Hadzibabic and Nir Navon},
journal= {arXiv preprint arXiv:1810.08195},
year = {2019}
}
Comments
6 pages, 5 figures