We investigate theoretically the possibility to observe dynamical mode locking, in the form of Shapiro steps, when a time-periodic potential or force modulation is applied to a two-dimensional (2D) lattice of colloidal particles that are dragged by an external force over an optically generated periodic potential. Here we present realistic molecular dynamics simulations of a 2D experimental setup, where the colloid sliding is realized through the motion of soliton lines between locally commensurate patches or domains, and where the Shapiro steps are predicted and analyzed. Interestingly, the jump between one step and the next is seen to correspond to a fixed number of colloids jumping from one patch to the next, across the soliton line boundary, during each ac cycle. In addition to ordinary 'integer' steps, coinciding here with the synchronous rigid advancement of the whole colloid monolayer, our main prediction is the existence of additional smaller 'subharmonic' steps due to localized solitonic regions of incommensurate layers executing synchronized slips, while the majority of the colloids remains pinned to a potential minimum. The current availability and wide parameter tunability of colloid monolayers makes these predictions potentially easy to access in an experimentally rich 2D geometrical configuration.

Subharmonic Shapiro steps of sliding colloidal monolayers in optical lattices / S.V. Paronuzzi Ticco, G. Fornasier, N. Manini, G.E. Santoro, E. Tosatti, A. Vanossi. - In: JOURNAL OF PHYSICS. CONDENSED MATTER. - ISSN 0953-8984. - 28:13(2016), pp. 134006.1-134006.13. [10.1088/0953-8984/28/13/134006]

Subharmonic Shapiro steps of sliding colloidal monolayers in optical lattices

N. Manini
;
2016

Abstract

We investigate theoretically the possibility to observe dynamical mode locking, in the form of Shapiro steps, when a time-periodic potential or force modulation is applied to a two-dimensional (2D) lattice of colloidal particles that are dragged by an external force over an optically generated periodic potential. Here we present realistic molecular dynamics simulations of a 2D experimental setup, where the colloid sliding is realized through the motion of soliton lines between locally commensurate patches or domains, and where the Shapiro steps are predicted and analyzed. Interestingly, the jump between one step and the next is seen to correspond to a fixed number of colloids jumping from one patch to the next, across the soliton line boundary, during each ac cycle. In addition to ordinary 'integer' steps, coinciding here with the synchronous rigid advancement of the whole colloid monolayer, our main prediction is the existence of additional smaller 'subharmonic' steps due to localized solitonic regions of incommensurate layers executing synchronized slips, while the majority of the colloids remains pinned to a potential minimum. The current availability and wide parameter tunability of colloid monolayers makes these predictions potentially easy to access in an experimentally rich 2D geometrical configuration.
No
English
Shapiro steps; colloids; mode locking; subharmonic steps; simulation; pinning-depinning
Settore FIS/03 - Fisica della Materia
Articolo
Esperti anonimi
Ricerca di base
Pubblicazione scientifica
2016
Institute of Physics Publishing
28
13
134006
1
13
13
Pubblicato
Periodico con rilevanza internazionale
scopus
pubmed
crossref
Aderisco
info:eu-repo/semantics/article
Subharmonic Shapiro steps of sliding colloidal monolayers in optical lattices / S.V. Paronuzzi Ticco, G. Fornasier, N. Manini, G.E. Santoro, E. Tosatti, A. Vanossi. - In: JOURNAL OF PHYSICS. CONDENSED MATTER. - ISSN 0953-8984. - 28:13(2016), pp. 134006.1-134006.13. [10.1088/0953-8984/28/13/134006]
open
Prodotti della ricerca::01 - Articolo su periodico
6
262
Article (author)
Periodico con Impact Factor
S.V. Paronuzzi Ticco, G. Fornasier, N. Manini, G.E. Santoro, E. Tosatti, A. Vanossi
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/2434/419237
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