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Aerosol jet printing of surface acoustic wave microfluidic devices.

Publication ,  Journal Article
Rich, J; Cole, B; Li, T; Lu, B; Fu, H; Smith, BN; Xia, J; Yang, S; Zhong, R; Doherty, JL; Kaneko, K; Suzuki, H; Tian, Z; Franklin, AD; Huang, TJ
Published in: Microsystems & nanoengineering
January 2024

The addition of surface acoustic wave (SAW) technologies to microfluidics has greatly advanced lab-on-a-chip applications due to their unique and powerful attributes, including high-precision manipulation, versatility, integrability, biocompatibility, contactless nature, and rapid actuation. However, the development of SAW microfluidic devices is limited by complex and time-consuming micro/nanofabrication techniques and access to cleanroom facilities for multistep photolithography and vacuum-based processing. To simplify the fabrication of SAW microfluidic devices with customizable dimensions and functions, we utilized the additive manufacturing technique of aerosol jet printing. We successfully fabricated customized SAW microfluidic devices of varying materials, including silver nanowires, graphene, and poly(3,4-ethylenedioxythiophene) polystyrene sulfonate (PEDOT:PSS). To characterize and compare the acoustic actuation performance of these aerosol jet printed SAW microfluidic devices with their cleanroom-fabricated counterparts, the wave displacements and resonant frequencies of the different fabricated devices were directly measured through scanning laser Doppler vibrometry. Finally, to exhibit the capability of the aerosol jet printed devices for lab-on-a-chip applications, we successfully conducted acoustic streaming and particle concentration experiments. Overall, we demonstrated a novel solution-based, direct-write, single-step, cleanroom-free additive manufacturing technique to rapidly develop SAW microfluidic devices that shows viability for applications in the fields of biology, chemistry, engineering, and medicine.

Duke Scholars

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Published In

Microsystems & nanoengineering

DOI

EISSN

2055-7434

ISSN

2096-1030

Publication Date

January 2024

Volume

10

Start / End Page

2

Related Subject Headings

  • 4018 Nanotechnology
 

Citation

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Chicago
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MLA
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Rich, J., Cole, B., Li, T., Lu, B., Fu, H., Smith, B. N., … Huang, T. J. (2024). Aerosol jet printing of surface acoustic wave microfluidic devices. Microsystems & Nanoengineering, 10, 2. https://doi.org/10.1038/s41378-023-00606-z
Rich, Joseph, Brian Cole, Teng Li, Brandon Lu, Hanyu Fu, Brittany N. Smith, Jianping Xia, et al. “Aerosol jet printing of surface acoustic wave microfluidic devices.Microsystems & Nanoengineering 10 (January 2024): 2. https://doi.org/10.1038/s41378-023-00606-z.
Rich J, Cole B, Li T, Lu B, Fu H, Smith BN, et al. Aerosol jet printing of surface acoustic wave microfluidic devices. Microsystems & nanoengineering. 2024 Jan;10:2.
Rich, Joseph, et al. “Aerosol jet printing of surface acoustic wave microfluidic devices.Microsystems & Nanoengineering, vol. 10, Jan. 2024, p. 2. Epmc, doi:10.1038/s41378-023-00606-z.
Rich J, Cole B, Li T, Lu B, Fu H, Smith BN, Xia J, Yang S, Zhong R, Doherty JL, Kaneko K, Suzuki H, Tian Z, Franklin AD, Huang TJ. Aerosol jet printing of surface acoustic wave microfluidic devices. Microsystems & nanoengineering. 2024 Jan;10:2.

Published In

Microsystems & nanoengineering

DOI

EISSN

2055-7434

ISSN

2096-1030

Publication Date

January 2024

Volume

10

Start / End Page

2

Related Subject Headings

  • 4018 Nanotechnology