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Fabrication of plastic microfluid channels by imprinting methods
L Martynova1, L E Locascio, M Gaitan
1Analytical Chemistry Division, National Institute of Standards and Technology, Gaithersburg, Maryland 20899, USA.
Analytical Chemistry
|December 24, 1997
Summary
Two imprinting techniques were used to fabricate microfluidic devices on poly(methyl methacrylate). Complex microchannel designs were achieved using micromachined silicon templates, enabling reproducible assays.
Area of Science:
- Materials Science
- Microfluidics
- Biotechnology
Background:
- Microfluidic devices offer miniaturized platforms for various applications.
- Poly(methyl methacrylate) (PMMA) is a common substrate material for microfluidic devices.
- Efficient and reproducible fabrication methods are crucial for microfluidic device development.
Purpose of the Study:
- To develop and compare two imprinting techniques for fabricating microfluidic devices on PMMA substrates.
- To enable the creation of microfluidic devices with complex channel designs.
- To demonstrate the functionality of fabricated devices for analytical applications.
Main Methods:
- First-generation devices fabricated by low-temperature heating and wire imprinting for simple linear channels.
- Second-generation devices fabricated using micromachined silicon wafer templates for complex 3D microchannel structures.
- Demonstration of device functionality using fluorescent analytes for electrophoretic injections and immunoassays.
Main Results:
- Low-cost, simple linear microfluidic devices produced via wire imprinting.
- Complex microchannel designs fabricated reproducibly using silicon wafer templates.
- Successful demonstration of reproducible electrophoretic injections and immunoassay performance in imprinted devices.
Conclusions:
- Two distinct imprinting techniques provide versatile methods for microfluidic device fabrication on PMMA.
- Micromachined silicon templates enable the scalable and reproducible production of complex microfluidic devices.
- The fabricated microfluidic devices show promise for various analytical and diagnostic applications.