| Literature DB >> 30026577 |
Abstract
Embedded solitons are rare self-localized nonlinear structures that, counterintuitively, survive inside a continuous background of resonant states. While this topic has been widely studied in nonlinear optics, it has received almost no attention in the field of Bose-Einstein condensation. In this work, we consider experimentally realizable Bose-Einstein condensates loaded in one-dimensional optical lattices and demonstrate that they support continuous families of stable three-dimensional (3D) embedded solitons. These solitons can exist inside the resonant continuous Bloch bands because they are protected by symmetry. The analysis of the Bogoliubov excitation spectrum as well as the long-term evolution after random perturbations proves the robustness of these nonlinear structures against any weak perturbation. This may open up a way for the experimental realization of stable 3D matter-wave embedded solitons as well as for monitoring the gap-soliton to embedded-soliton transition.Entities:
Year: 2018 PMID: 30026577 PMCID: PMC6053375 DOI: 10.1038/s41598-018-29219-7
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Figure 1Left: Ideal-gas (gN = 0) linear spectrum. Point C corresponds to an embedded soliton with N = 1130. Right: Phase-colored density isosurfaces of the Bloch waves corresponding to the points labeled with the same letters on the left.
Figure 2Left: Trajectory in μ − N plane of the (1, 1, 0) soliton family. Middle: Phase-colored density isosurfaces corresponding to the points labeled with the same letters on the left panel. Right: Axial profiles (in arbitrary units) of the 3D wave functions corresponding to the points c and D on the leftmost panel. Note that panel c refers to the wave function shown in Fig. 1(c) while panel D refers to the wave function shown in the middle panel D of the present figure.
Figure 3Column densities of the embedded soliton C of Fig. 2 integrated along the axial (left panel) and transverse (right panel) directions.
Figure 4Results of the stability analysis of the embedded soliton C of Fig. 2.