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In-droplet microparticle separation using travelling surface acoustic wave. | LitMetric

In-droplet microparticle separation using travelling surface acoustic wave.

Biomicrofluidics

Department of Mechanical Engineering, Korea Advanced Institute of Science and Technology (KAIST), 291 Daehak-ro, Yuseong-gu, Daejeon 34141, South Korea.

Published: November 2017

AI Article Synopsis

  • Microscopic droplets in microfluidic systems can carry cells and tiny particles, making precise control over their positions essential for various applications.
  • This paper introduces a method using travelling surface acoustic waves (TSAWs) to actively separate these microparticles inside droplets, demonstrating success with polystyrene particles of different sizes.
  • The technique allows for size-based separation of microparticles within moving droplets, offering advantages like being label-free and on-demand, which could benefit tasks like sample purification and enrichment.

Article Abstract

Droplets in microfluidic systems can contain microscale objects such as cells and microparticles. The control of the positions of microscale objects within a microchannel is crucial for practical applications in not only continuous-flow-based but also droplet-based systems. This paper proposes an active method for the separation of microparticles inside moving droplets which uses travelling surface acoustic waves (TSAWs). We demonstrate the preconcentration and separation of 5 and 10 m polystyrene microparticles in moving water-in-oil droplets through the application of TSAWs with two different frequencies. The microparticles inside the droplets are affected by the acoustic radiation force induced by the TSAWs to move laterally in the direction of the TSAW propagation and are thereby separated according to their size. In-droplet separation is then demonstrated through droplet splitting at a Y-junction. Compared to our previous studies, this acoustic approach offers the label-free and on-demand separation of different-sized micro-objects in moving droplets. The present method has potential uses such as in-droplet sample purification and enrichment.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC5739910PMC
http://dx.doi.org/10.1063/1.5010219DOI Listing

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