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Acoustofluidic separation of prolate and spherical micro-objects. | LitMetric

Acoustofluidic separation of prolate and spherical micro-objects.

Microsyst Nanoeng

Department of Mechanical Engineering, Chonnam National University, 77 Yongbong-ro, Buk-gu, Gwangju, 61186 Republic of Korea.

Published: January 2024

AI Article Synopsis

  • Most microfluidic separation methods focus on sorting particles by size, but this research introduces a technique that separates micro-objects based on their shape using acoustic waves.
  • The proposed method aligns non-spherical particles using acoustic radiation torque, allowing for effective shape-based separation by exploiting differences in particle morphology.
  • Experimental validation demonstrated high purity and recovery rates for the separation of various micro-objects, suggesting the method's potential for applications in drug delivery and biosensing.

Article Abstract

Most microfluidic separation techniques rely largely on object size as a separation marker. The ability to separate micro-objects based on their shape is crucial in various biomedical and chemical assays. Here, we develop an on-demand, label-free acoustofluidic method to separate prolate ellipsoids from spherical microparticles based on traveling surface acoustic wave-induced acoustic radiation force and torque. The freely rotating non-spherical micro-objects were aligned under the progressive acoustic field by the counterrotating radiation torque, and the major axis of the prolate ellipsoids was parallel to the progressive wave propagation. The specific alignment of the ellipsoidal particles resulted in a reduction in the cross-sectional area perpendicular to the wave propagation. As a consequence, the acoustic backscattering decreased, resulting in a decreased magnitude of the radiation force. Through the variation in radiation force, which depended on the micro-object morphology enabled the acoustofluidic shape-based separation. We conducted numerical simulations for the wave scattering of spherical and prolate objects to elucidate the working mechanism underlying the proposed method. A series of experiments with polystyrene microspheres, prolate ellipsoids, and peanut-shaped microparticles were performed for validation. Through quantitative analysis of the separation efficiency, we confirmed the high purity and high recovery rate of the proposed acoustofluidic shape-based separation of micro-objects. As a bioparticle, we utilize to perform shape-based separation, as the species has a variety of potential applications in drug delivery, biosensing, nanofabrication, bioencapsulation and immunoisolation.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC10784511PMC
http://dx.doi.org/10.1038/s41378-023-00636-7DOI Listing

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