Spontaneous nucleation of structural defects in inhomogeneous ion chains
Gabriele De Chiara, Adolfo del Campo, Giovanna Morigi, Martin B., Plenio, Alex Retzker

TL;DR
This paper investigates how inhomogeneous ion chains in traps form structural defects during rapid frequency quenches, using the Kibble-Zurek mechanism to predict defect densities and validating results through numerical simulations.
Contribution
It introduces an inhomogeneous extension of the Kibble-Zurek mechanism for ion chains in traps, analyzing defect formation during frequency quenches with analytical and numerical methods.
Findings
Defect density scales with quench rate differently in inhomogeneous chains.
Propagation velocity of the instability front affects defect formation.
Numerical simulations confirm analytical predictions.
Abstract
Structural defects in ion crystals can be formed during a linear quench of the transverse trapping frequency across the mechanical instability from a linear chain to the zigzag structure. The density of defects after the sweep can be conveniently described by the Kibble-Zurek mechanism. In particular, the number of kinks in the zigzag ordering can be derived from a time-dependent Ginzburg-Landau equation for the order parameter, here the zigzag transverse size, under the assumption that the ions are continuously laser cooled. In a linear Paul trap the transition becomes inhomogeneous, being the charge density larger in the center and more rarefied at the edges. During the linear quench the mechanical instability is first crossed in the center of the chain, and a front, at which the mechanical instability is crossed during the quench, is identified which propagates along the chain from…
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