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Article

Common Food-Wrap Film as a Cost-Effective and Readily Available Alternative to Thermoplastic Polyurethane (TPU) Membranes for Microfluidic On-Chip Valves and Pumps

by
Huu Anh Minh Nguyen
1,
Mark Volosov
2,
Jessica Maffei
3,
Dae Jung Martins Cruz
2 and
Roman Voronov
1,3,*
1
Otto H. York Department of Chemical and Materials Engineering, Newark College of Engineering, New Jersey Institute of Technology, University Heights, Newark, NJ 07102, USA
2
Helen and John C. Hartmann Department of Electrical and Computer Engineering, Newark College of Engineering, New Jersey Institute of Technology, University Heights, Newark, NJ 07102, USA
3
Department of Biomedical Engineering, Newark College of Engineering, New Jersey Institute of Technology, University Heights, Newark, NJ 07102, USA
*
Author to whom correspondence should be addressed.
Micromachines 2025, 16(6), 657; https://doi.org/10.3390/mi16060657
Submission received: 15 April 2025 / Revised: 27 May 2025 / Accepted: 28 May 2025 / Published: 30 May 2025

Abstract

Microfluidic devices rely on precise fluid control to enable complex operations in diagnostics, chemical synthesis, and biological research. Central to this control are microvalves, which regulate on-chip flow but require flexible membranes for active operation. While the laser cutting of thermoplastics offers a fast, automated method for fabricating rigid microfluidic components, integrating flexible elements like valves and pumps remains a key challenge. Thermoplastic polyurethane (TPU) membranes have been adopted to address this need but are costly and difficult to procure reliably. In this study, we present commercial food-wrap film (FWF) as a low-cost, widely available alternative membrane material. We demonstrate FWF’s compatibility with laser-cut thermoplastic microfluidic devices by successfully fabricating Quake-style valves and peristaltic pumps. FWF valves maintained reliable sealing at 40 psi, maintained stable flow rates of ~1.33 μL/min during peristaltic operation, and sustained over one million continuous actuation cycles without performance degradation. Burst pressure testing confirmed robustness up to 60 psi. Additionally, FWF’s thermal resistance up to 140 °C enabled effective thermal bonding with PMMA layers, simplifying device assembly. These results establish FWF as a viable substitute for TPU membranes, offering an accessible and scalable solution for microfluidic device fabrication, particularly in resource-limited settings where TPU availability is constrained.
Keywords: microfluidics; rapid prototyping; laser cutting; on-chip valves; integrated microvalves and micropumps; membranes; food-wrap film microfluidics; rapid prototyping; laser cutting; on-chip valves; integrated microvalves and micropumps; membranes; food-wrap film

Share and Cite

MDPI and ACS Style

Nguyen, H.A.M.; Volosov, M.; Maffei, J.; Martins Cruz, D.J.; Voronov, R. Common Food-Wrap Film as a Cost-Effective and Readily Available Alternative to Thermoplastic Polyurethane (TPU) Membranes for Microfluidic On-Chip Valves and Pumps. Micromachines 2025, 16, 657. https://doi.org/10.3390/mi16060657

AMA Style

Nguyen HAM, Volosov M, Maffei J, Martins Cruz DJ, Voronov R. Common Food-Wrap Film as a Cost-Effective and Readily Available Alternative to Thermoplastic Polyurethane (TPU) Membranes for Microfluidic On-Chip Valves and Pumps. Micromachines. 2025; 16(6):657. https://doi.org/10.3390/mi16060657

Chicago/Turabian Style

Nguyen, Huu Anh Minh, Mark Volosov, Jessica Maffei, Dae Jung Martins Cruz, and Roman Voronov. 2025. "Common Food-Wrap Film as a Cost-Effective and Readily Available Alternative to Thermoplastic Polyurethane (TPU) Membranes for Microfluidic On-Chip Valves and Pumps" Micromachines 16, no. 6: 657. https://doi.org/10.3390/mi16060657

APA Style

Nguyen, H. A. M., Volosov, M., Maffei, J., Martins Cruz, D. J., & Voronov, R. (2025). Common Food-Wrap Film as a Cost-Effective and Readily Available Alternative to Thermoplastic Polyurethane (TPU) Membranes for Microfluidic On-Chip Valves and Pumps. Micromachines, 16(6), 657. https://doi.org/10.3390/mi16060657

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