Low-cost rapid prototyping for microfluidics using Parafilm®-based microchannels for low resource settings
Document Type
Article
Publication Date
4-1-2024
Abstract
We presented a novel strategy of using Parafilm® sheets for making microchannels in rigid substrates-based microfluidic devices with fast prototyping and cost-effectiveness. The strategy uses a Plotter cutter and Parafilm® sheets via the Thermal fusing bonding method to prepare Rigid substrate-based Microfluidics (PPTRμ) in a short span of ∼ 10 min. The Cricut® Explore plotter cutter, as a cheaper alternative to conventional laser cutters, with a ∼ 500 µm resolution to Parafilm® sheet, was shown to create sharp angle micropatterns with a uniform angular distribution. Process parameters like sealing temperature were optimized to minimize channel deformation and enhance device sealing. A 55 °C sealing temperature shows sufficient bonding strength and ensures minimal microchannel width deformation (< 5%). Parafilm® sheets used to make the microchannels showed good chemical resistance to different pH and polar solvent environments. The practical use of the PPTRμ protocol to prepare a two-dimensional concentration gradient generator and a microfluidic electrochemical transducer was successfully demonstrated. The same protocol was extended by appropriately extending the sealing time to 10 min to prepare a three-dimensional microfluidic device with a hybrid structure of “glass-Parafilm®-glass-Parafilm®-glass.”
Identifier
85182412242 (Scopus)
Publication Title
Sensors and Actuators B: Chemical
External Full Text Location
https://doi.org/10.1016/j.snb.2023.135212
ISSN
09254005
Volume
404
Grant
1751759
Fund Ref
National Science Foundation
Recommended Citation
Li, Zhenglong; Haridas, Niranjan; Kaaliveetil, Sreerag; Cheng, Yu Hsuan; Chande, Charmi; Perez, Veronica; Miri, Amir K.; and Basuray, Sagnik, "Low-cost rapid prototyping for microfluidics using Parafilm®-based microchannels for low resource settings" (2024). Faculty Publications. 533.
https://digitalcommons.njit.edu/fac_pubs/533