Creases as elastocapillary gates for autonomous droplet control

Fuente: arXiv
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Autori principali: Wu, Zixuan, Linton, Gavin, Karpitschka, Stefan, Pandey, Anupam
Natura: Preprint
Pubblicazione: 2025
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author Wu, Zixuan
Linton, Gavin
Karpitschka, Stefan
Pandey, Anupam
author_facet Wu, Zixuan
Linton, Gavin
Karpitschka, Stefan
Pandey, Anupam
contents Droplets are the core functional units in microfluidic technologies that aim to integrate computation and reaction on a single platform. Achieving directed transport and control of these droplets typically demands elaborate substrate patterning, modulation of external fields, and real-time feedback. Here we reveal that an engineered pattern of creases on a soft interface autonomously gate and steer droplets through a long-range elastocapillary repulsion, allowing programmable flow of information. Acting as an energy barrier, the crease bars incoming droplets below a critical size, without making contact. We uncover the multi-scale, repulsive force-distance law describing interactions between a drop and a singular crease. Leveraging this mechanism, we demonstrate passive and active filtration based on droplet size and surface tension, and implement functionalities such as path guidance, tunable hysterons, pulse modulators, and elementary logic operations like adders. This crease-based gating approach thus demonstrates complex in-unit processing capabilities - typically accessible only through sophisticated surface and fluidic modifications - offering a multimodal, potentially rewritable strategy for droplet control in interfacial assembly and biochemical assays.
format Preprint
id arxiv_https___arxiv_org_abs_2510_01506
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Creases as elastocapillary gates for autonomous droplet control
Wu, Zixuan
Linton, Gavin
Karpitschka, Stefan
Pandey, Anupam
Soft Condensed Matter
Fluid Dynamics
Droplets are the core functional units in microfluidic technologies that aim to integrate computation and reaction on a single platform. Achieving directed transport and control of these droplets typically demands elaborate substrate patterning, modulation of external fields, and real-time feedback. Here we reveal that an engineered pattern of creases on a soft interface autonomously gate and steer droplets through a long-range elastocapillary repulsion, allowing programmable flow of information. Acting as an energy barrier, the crease bars incoming droplets below a critical size, without making contact. We uncover the multi-scale, repulsive force-distance law describing interactions between a drop and a singular crease. Leveraging this mechanism, we demonstrate passive and active filtration based on droplet size and surface tension, and implement functionalities such as path guidance, tunable hysterons, pulse modulators, and elementary logic operations like adders. This crease-based gating approach thus demonstrates complex in-unit processing capabilities - typically accessible only through sophisticated surface and fluidic modifications - offering a multimodal, potentially rewritable strategy for droplet control in interfacial assembly and biochemical assays.
title Creases as elastocapillary gates for autonomous droplet control
topic Soft Condensed Matter
Fluid Dynamics
url https://arxiv.org/abs/2510.01506