Chainlike transitions in Wigner crystals: Sequential versus nonsequential

J. E. Galván-Moya, V. R. Misko, and F. M. Peeters
Phys. Rev. B 92, 064112 – Published 21 August 2015

Abstract

The structural transitions of the ground state of a system of repulsively interacting particles confined in a quasi-one-dimensional channel, and the effect of the interparticle interaction as well as the functional form of the confinement potential on those transitions are investigated. Although the nonsequential ordering of transitions (non-SOT), i.e., the 1243456 sequence of chain configurations with increasing density, is widely robust as predicted in a number of theoretical studies, the sequential ordering of transitions (SOT), i.e., the 123456 chain, is found as the ground state for long-ranged interparticle interaction and hard-wall-like confinement potentials. We found an energy barrier between every two different phases around its transition point, which plays an important role in the preference of the system to follow either a SOT or a non-SOT. However, that preferential transition requires also the stability of the phases during the transition. Additionally, we analyze the effect of a small structural disorder on the transition between the two phases around its transition point. Our results show that a small deformation of the triangular structure changes dramatically the picture of the transition between two phases, removing in a considerable region the non-SOT in the system. This feature could explain the fact that the non-SOT is, up to now, not observed in experimental systems, and suggests a more advanced experimental setup to detect the non-SOT.

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  • Received 30 June 2015

DOI:https://doi.org/10.1103/PhysRevB.92.064112

©2015 American Physical Society

Authors & Affiliations

J. E. Galván-Moya*, V. R. Misko, and F. M. Peeters

  • Department of Physics, University of Antwerp, Groenenborgerlaan 171, B-2020, Antwerp, Belgium

  • *edogalvan@gmail.com
  • vyacheslav.misko@uantwerpen.be
  • francois.peeters@uantwerpen.be

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Issue

Vol. 92, Iss. 6 — 1 August 2015

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