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An acoustofluidic embedding platform for rapid multiphase microparticle injection.

Publication ,  Journal Article
Zhong, R; Xu, X; Tutoni, G; Liu, M; Yang, K; Li, K; Jin, K; Chen, Y; Mai, JDH; Becker, ML; Huang, TJ
Published in: Nature communications
May 2025

Droplet manipulation technologies play a critical role in many aspects of biochemical research, including in complex reaction assays useful for drug delivery, for building artificial cells, and in synthetic biology. While advancements have been made in manipulating liquid droplets, the capability to freely and dynamically manipulate solid objects across aqueous and oil phases remains unexplored. Here, we develop an acoustofluidic frequency-associated microsphere embedding platform, which enables microscale rapid injection of microparticles from a fluorinated oil into aqueous droplets. By observing different embedding mechanisms at low and high acoustic frequencies, we establish a theoretical model and practical principles for cross-phase manipulations. The proposed system not only enables multi-phase manipulation but also provides contactless control of specific microparticles within various distinctive phases. We demonstrate the acoustic-driven embedding and subsequent on-demand disassembly of hydrogel microspheres. This system indicates potential for reagent delivery and molecule capture applications. It enhances existing droplet manipulation technologies by enabling both multi-phase and cross-phase operations, paving the way for solid-liquid interaction studies in artificial cell research. The capability for intricate multi-phase loading, transport, and reactions offers promising implications for various fields, including in-droplet biochemical assays, drug delivery, and synthetic biology.

Duke Scholars

Published In

Nature communications

DOI

EISSN

2041-1723

ISSN

2041-1723

Publication Date

May 2025

Volume

16

Issue

1

Start / End Page

4144

Related Subject Headings

  • Microspheres
  • Microfluidics
  • Microfluidic Analytical Techniques
  • Hydrogels
  • Acoustics
 

Citation

APA
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ICMJE
MLA
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Zhong, R., Xu, X., Tutoni, G., Liu, M., Yang, K., Li, K., … Huang, T. J. (2025). An acoustofluidic embedding platform for rapid multiphase microparticle injection. Nature Communications, 16(1), 4144. https://doi.org/10.1038/s41467-025-59146-x
Zhong, Ruoyu, Xianchen Xu, Gianna Tutoni, Mingyuan Liu, Kaichun Yang, Ke Li, Ke Jin, et al. “An acoustofluidic embedding platform for rapid multiphase microparticle injection.Nature Communications 16, no. 1 (May 2025): 4144. https://doi.org/10.1038/s41467-025-59146-x.
Zhong R, Xu X, Tutoni G, Liu M, Yang K, Li K, et al. An acoustofluidic embedding platform for rapid multiphase microparticle injection. Nature communications. 2025 May;16(1):4144.
Zhong, Ruoyu, et al. “An acoustofluidic embedding platform for rapid multiphase microparticle injection.Nature Communications, vol. 16, no. 1, May 2025, p. 4144. Epmc, doi:10.1038/s41467-025-59146-x.
Zhong R, Xu X, Tutoni G, Liu M, Yang K, Li K, Jin K, Chen Y, Mai JDH, Becker ML, Huang TJ. An acoustofluidic embedding platform for rapid multiphase microparticle injection. Nature communications. 2025 May;16(1):4144.

Published In

Nature communications

DOI

EISSN

2041-1723

ISSN

2041-1723

Publication Date

May 2025

Volume

16

Issue

1

Start / End Page

4144

Related Subject Headings

  • Microspheres
  • Microfluidics
  • Microfluidic Analytical Techniques
  • Hydrogels
  • Acoustics