Engineering tunable fractional Shapiro steps in colloidal transport

Fuente: arXiv
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Main Authors: Stikuts, Andris P., Mishra, Seemant, Ryabov, Artem, Maass, Philipp, Tierno, Pietro
Format: Preprint
Published: 2025
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author Stikuts, Andris P.
Mishra, Seemant
Ryabov, Artem
Maass, Philipp
Tierno, Pietro
author_facet Stikuts, Andris P.
Mishra, Seemant
Ryabov, Artem
Maass, Philipp
Tierno, Pietro
contents Shapiro steps are quantized plateaus in the velocity-force or velocity-torque curve of a driven system, when its speed remains constant despite an increase in the driving force. For microscopic particles driven across a sinusoidal potential, integer Shapiro steps have been observed. By driving a single colloidal particle across a time-modulated, non-sinusoidal periodic optical landscape, we here demonstrate that fractional Shapiro steps emerge in addition to integer ones. Measuring the particle position via individual particle tracking, we reveal the underlying microscopic mechanisms that produce integer and fractional steps and demonstrate how these steps can be controlled by tuning the shape and driving protocol of the optical potential. The flexibility offered by optical engineering allows us to generate wide ranges of potential shapes and to study, at the single-particle level, synchronization behavior in driven soft condensed matter systems.
format Preprint
id arxiv_https___arxiv_org_abs_2503_13049
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Engineering tunable fractional Shapiro steps in colloidal transport
Stikuts, Andris P.
Mishra, Seemant
Ryabov, Artem
Maass, Philipp
Tierno, Pietro
Soft Condensed Matter
Shapiro steps are quantized plateaus in the velocity-force or velocity-torque curve of a driven system, when its speed remains constant despite an increase in the driving force. For microscopic particles driven across a sinusoidal potential, integer Shapiro steps have been observed. By driving a single colloidal particle across a time-modulated, non-sinusoidal periodic optical landscape, we here demonstrate that fractional Shapiro steps emerge in addition to integer ones. Measuring the particle position via individual particle tracking, we reveal the underlying microscopic mechanisms that produce integer and fractional steps and demonstrate how these steps can be controlled by tuning the shape and driving protocol of the optical potential. The flexibility offered by optical engineering allows us to generate wide ranges of potential shapes and to study, at the single-particle level, synchronization behavior in driven soft condensed matter systems.
title Engineering tunable fractional Shapiro steps in colloidal transport
topic Soft Condensed Matter
url https://arxiv.org/abs/2503.13049