
Open access
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Date
2021-03-31Type
- Journal Article
Citations
Cited 16 times in
Web of Science
Cited 15 times in
Scopus
ETH Bibliography
yes
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Abstract
Using light to manipulate fluids has been a long-sought-after goal for lab-on-a-chip applications to address the size mismatch between bulky external fluid controllers and microfluidic devices. Yet, this goal has remained elusive due to the complexity of thermally driven fluid dynamic phenomena, and the lack of approaches that allow comprehensive multiscale and multiparameter studies. Here, we report an innovative optofluidic platform that fulfills this need by combining digital holographic microscopy with state-of-the-art thermoplasmonics, allowing us to identify the different contributions from thermophoresis, thermo-osmosis, convection, and radiation pressure. In our experiments, we demonstrate that a local thermal perturbation at the microscale can lead to mm-scale changes in both the particle and fluid dynamics, thus achieving long-range transport. Furthermore, thanks to a comprehensive parameter study involving sample geometry, temperature increase, light fluence, and size of the heat source, we showcase an integrated and reconfigurable all-optical control strategy for microfluidic devices, thereby opening new frontiers in fluid actuation technology. Show more
Permanent link
https://doi.org/10.3929/ethz-b-000477132Publication status
publishedExternal links
Journal / series
Nature CommunicationsVolume
Pages / Article No.
Publisher
Nature Publishing GroupSubject
Nanophotonics and plasmonics; Optics and photonics; optofluidics; BionanophotonicsOrganisational unit
09698 - Quidant, Romain / Quidant, Romain
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Show all metadata
Citations
Cited 16 times in
Web of Science
Cited 15 times in
Scopus
ETH Bibliography
yes
Altmetrics