Nguyen Huu Anh Minh, Volosov Mark, Maffei Jessica, Martins Cruz Dae Jung, Voronov Roman
Otto H. York Department of Chemical and Materials Engineering, Newark College of Engineering, New Jersey Institute of Technology, University Heights, Newark, NJ 07102, USA.
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.
Micromachines (Basel). 2025 May 30;16(6):657. doi: 10.3390/mi16060657.
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.
微流控设备依靠精确的流体控制来实现诊断、化学合成和生物研究中的复杂操作。这种控制的核心是微阀,它调节芯片上的流体流动,但需要柔性膜来进行主动操作。虽然热塑性塑料的激光切割为制造刚性微流控部件提供了一种快速、自动化的方法,但集成诸如阀门和泵等柔性元件仍然是一个关键挑战。热塑性聚氨酯(TPU)膜已被用于满足这一需求,但成本高昂且难以可靠采购。在本研究中,我们提出将商用食品包装薄膜(FWF)作为一种低成本、广泛可用的替代膜材料。我们通过成功制造Quake式阀门和蠕动泵,证明了FWF与激光切割热塑性微流控设备的兼容性。FWF阀门在40 psi压力下保持可靠密封,在蠕动操作期间保持约1.33 μL/min的稳定流速,并在超过一百万次连续驱动循环中保持性能不下降。爆破压力测试证实其在高达60 psi的压力下具有稳健性。此外,FWF高达140°C的耐热性使其能够与PMMA层进行有效的热键合,简化了设备组装。这些结果表明FWF是TPU膜的可行替代品,为微流控设备制造提供了一种可获取且可扩展的解决方案,特别是在TPU可用性受限的资源有限环境中。