Collective directional locking of colloidal monolayers on a periodic substrate

Publication date

2020-05-06T14:18:35Z

2020-05-06T14:18:35Z

2020-02-04

2020-05-06T14:18:35Z

Abstract

We investigate the directional locking effects that arise when a monolayer of paramagnetic colloidal particles is driven across a triangular lattice of magnetic bubbles. We use an external rotating magnetic field to generate a two-dimensional traveling wave ratchet forcing the transport of particles along a direction that intersects two crystallographic axes of the lattice. We find that, while single particles show no preferred direction, collective effects induce transversal current and directional locking at high density via a spontaneous symmetry breaking. The colloidal current may be polarized via an additional bias field that makes one transport direction energetically preferred.

Document Type

Article


Published version

Language

English

Publisher

American Physical Society

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Reproducció del document publicat a: https://doi.org/10.1103/PhysRevLett.124.058002

Physical Review Letters, 2020, vol. 124, num. 5, p. 058002

https://doi.org/10.1103/PhysRevLett.124.058002

info:eu-repo/grantAgreement/EC/H2020/811234/EU//ENFORCE

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(c) American Physical Society, 2020

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