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Laplace Pressure Driven Single-Droplet Jumping on Structured Surfaces

Authors :
Kazi Fazle Rabbi
Nenad Miljkovic
Feipeng Chen
Yimeng Qin
Jie Feng
Longnan Li
Xueqian Zhang
Zi Wang
Soumyadip Sett
Feng Chen
Xiao Yan
Muhammad Jahidul Hoque
Guanlei Zhao
Source :
ACS Nano. 14:12796-12809
Publication Year :
2020
Publisher :
American Chemical Society (ACS), 2020.

Abstract

Droplet transport on, and shedding from, surfaces is ubiquitous in nature and is a key phenomenon governing applications including biofluidics, self-cleaning, anti-icing, water harvesting, and electronics thermal management. Conventional methods to achieve spontaneous droplet shedding enabled by surface-droplet interactions suffer from low droplet transport velocities and energy conversion efficiencies. Here, by spatially confining the growing droplet and enabling relaxation via rationally designed grooves, we achieve single-droplet jumping of micrometer and millimeter droplets with dimensionless jumping velocities v* approaching 0.95, significantly higher than conventional passive approaches such as coalescence-induced droplet jumping (v* ≈ 0.2-0.3). The mechanisms governing single-droplet jumping are elucidated through the study of groove geometry and local pinning, providing guidelines for optimized surface design. We show that rational design of grooves enables flexible control of droplet-jumping velocity, direction, and size via tailoring of local pinning and Laplace pressure differences. We successfully exploit this previously unobserved mechanism as a means for rapid removal of droplets during steam condensation. Our study demonstrates a passive method for fast, efficient, directional, and surface-pinning-tolerant transport and shedding of droplets having micrometer to millimeter length scales.

Details

ISSN :
1936086X and 19360851
Volume :
14
Database :
OpenAIRE
Journal :
ACS Nano
Accession number :
edsair.doi.dedup.....d69aa7c4fcad5c01a9b11be734755d66
Full Text :
https://doi.org/10.1021/acsnano.0c03487