How fast can a liquid metal drop respond to a time-dependent electrocapillary excitation?

Fuente: arXiv
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Main Authors: Martinez, Javier Otero, Armada, Ana Garcia, Li, Yi, Nijhuis, Christian, Rodríguez-Rodríguez, Javier
Format: Preprint
Published: 2025
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author Martinez, Javier Otero
Armada, Ana Garcia
Li, Yi
Nijhuis, Christian
Rodríguez-Rodríguez, Javier
author_facet Martinez, Javier Otero
Armada, Ana Garcia
Li, Yi
Nijhuis, Christian
Rodríguez-Rodríguez, Javier
contents Gallium alloys are promising materials in biomedical engineering, electronics, and wireless communications, thanks to their good conductivity, non toxicity and their ability to sustain large deformations. They can be transported in capillaries using purely electric means by continuous electrowetting (CEW). Current models of CEW-driven flows do not address the transient response to fast changes in the excitation, crucial in many applications. Here, we present a theory that describes the CEW-driven oscillatory motion of a drop of Eutectic Gallium-Indium alloy inside a capillary. We consider inertia, viscosity and the transient response of the electrical circuit consisting of the drop plus the electrolyte where it is immersed. The theory describes fairly well the experimental drop velocity and explains the existence of an optimal frequency that maximizes the velocity.
format Preprint
id arxiv_https___arxiv_org_abs_2512_20516
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle How fast can a liquid metal drop respond to a time-dependent electrocapillary excitation?
Martinez, Javier Otero
Armada, Ana Garcia
Li, Yi
Nijhuis, Christian
Rodríguez-Rodríguez, Javier
Fluid Dynamics
Soft Condensed Matter
Gallium alloys are promising materials in biomedical engineering, electronics, and wireless communications, thanks to their good conductivity, non toxicity and their ability to sustain large deformations. They can be transported in capillaries using purely electric means by continuous electrowetting (CEW). Current models of CEW-driven flows do not address the transient response to fast changes in the excitation, crucial in many applications. Here, we present a theory that describes the CEW-driven oscillatory motion of a drop of Eutectic Gallium-Indium alloy inside a capillary. We consider inertia, viscosity and the transient response of the electrical circuit consisting of the drop plus the electrolyte where it is immersed. The theory describes fairly well the experimental drop velocity and explains the existence of an optimal frequency that maximizes the velocity.
title How fast can a liquid metal drop respond to a time-dependent electrocapillary excitation?
topic Fluid Dynamics
Soft Condensed Matter
url https://arxiv.org/abs/2512.20516