AI Article Synopsis

  • Liquid droplets are being used as a simple model to study complex physical phenomena from biology to astrophysics.
  • This study introduces an acoustofluidic centrifugation technique that combines acoustic waves and droplet spinning for effective separation and enrichment of nanoparticles in under a minute.
  • The method has been tested to successfully process biological samples, such as DNA and exosomes, and offers new possibilities for manipulating nanoscale particles in multiple scientific fields.

Article Abstract

Liquid droplets have been studied for decades and have recently experienced renewed attention as a simplified model for numerous fascinating physical phenomena occurring on size scales from the cell nucleus to stellar black holes. Here, we present an acoustofluidic centrifugation technique that leverages an entanglement of acoustic wave actuation and the spin of a fluidic droplet to enable nanoparticle enrichment and separation. By combining acoustic streaming and droplet spinning, rapid (<1 min) nanoparticle concentration and size-based separation are achieved with a resolution sufficient to identify and isolate exosome subpopulations. The underlying physical mechanisms have been characterized both numerically and experimentally, and the ability to process biological samples (including DNA segments and exosome subpopulations) has been successfully demonstrated. Together, this acoustofluidic centrifuge overcomes existing limitations in the manipulation of nanoscale (<100 nm) bioparticles and can be valuable for various applications in the fields of biology, chemistry, engineering, material science, and medicine.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC7775782PMC
http://dx.doi.org/10.1126/sciadv.abc0467DOI Listing

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