Structure, dynamics and bifurcations of discrete solitons in trapped ion crystals
arXiv:1305.6754 · doi:10.1088/1367-2630/15/9/093003
Abstract
We study discrete solitons (kinks) accessible in state-of-the-art trapped ion experiments, considering zigzag crystals and quasi-3D configurations, both theoretically and experimentally. We first extend the theoretical understanding of different phenomena predicted and recently experimentally observed in the structure and dynamics of these topological excitations. Employing tools from topological degree theory, we analyze bifurcations of crystal configurations in dependence on the trapping parameters, and investigate the formation of kink configurations and the transformations of kinks between different structures. This allows us to accurately define and calculate the effective potential experienced by solitons within the Wigner crystal, and study how this (so-called Peierls-Nabarro) potential gets modified to a nonperiodic globally trapping potential in certain parameter regimes. The kinks' rest mass (energy) and spectrum of modes are computed and the dynamics of linear and nonlinear kink oscillations are analyzed. We also present novel, experimentally observed, configurations of kinks incorporating a large-mass defect realized by an embedded molecular ion, and of pairs of interacting kinks stable for long times, offering the perspective for exploring and exploiting complex collective nonlinear excitations, controllable on the quantum level.
25 pages, 10 figures, v2 corrects Fig. 2 and adds some text and references
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Cited by in corpus (18)
- Spectroscopy and Directed Transport of Topological Solitons in Crystals of Trapped Ions
- Dynamics of topological defects in ion Coulomb crystals
- The physics and applications of strongly coupled plasmas levitated in electrodynamic traps
- Entanglement Generation Using Discrete Solitons in Coulomb Crystals
- Structural phase transitions and topological defects in ion Coulomb crystals
- Magnetic particles confined in a modulated channel: structural transitions tunable by tilting a magnetic field
- Optomechanical many-body cooling using frustration
- Nanofriction and motion of topological defects in self-organized ion Coulomb crystals
- Equilibrium configurations of hard spheres in a cylindrical harmonic potential
- Structural transitions of nearly second order in classical dipolar gases
- Dynamics of vortex defect formation in two dimensional Coulomb crystals
- Energy localization in interacting atomic chains with topological solitons
- Topological interface states mediated by spontaneous symmetry breaking
- Cooperative engineering the multiple radio-frequency fields to reduce the X-junction barrier for ion trap chips
- Heat transport in a Coulomb ion crystal with a topological defect
- Solitons and entanglement in the double sine-Gordon model
- Fractal ground state of ion chains in periodic potentials
- Quench Dynamics of Two Coupled Ionic Zig-Zag Chains