Literature DB >> 18497911

Teflon films for chemically-inert microfluidic valves and pumps.

William H Grover1, Marcio G von Muhlen, Scott R Manalis.   

Abstract

We present a simple method for fabricating chemically-inert Teflon microfluidic valves and pumps in glass microfluidic devices. These structures are modeled after monolithic membrane valves and pumps that utilize a featureless polydimethylsiloxane (PDMS) membrane bonded between two etched glass wafers. The limited chemical compatibility of PDMS has necessitated research into alternative materials for microfluidic devices. Previous work has shown that spin-coated amorphous fluoropolymers and Teflon-fluoropolymer laminates can be fabricated and substituted for PDMS in monolithic membrane valves and pumps for space flight applications. However, the complex process for fabricating these spin-coated Teflon films and laminates may preclude their use in many research and manufacturing contexts. As an alternative, we show that commercially-available fluorinated ethylene-propylene (FEP) Teflon films can be used to fabricate chemically-inert monolithic membrane valves and pumps in glass microfluidic devices. The FEP Teflon valves and pumps presented here are simple to fabricate, function similarly to their PDMS counterparts, maintain their performance over extended use, and are resistant to virtually all chemicals. These structures should facilitate lab-on-a-chip research involving a vast array of chemistries that are incompatible with native PDMS microfluidic devices.

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Year:  2008        PMID: 18497911      PMCID: PMC4032772          DOI: 10.1039/b800600h

Source DB:  PubMed          Journal:  Lab Chip        ISSN: 1473-0189            Impact factor:   6.799


  13 in total

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  21 in total

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7.  Achieving One-step Surface Coating of Highly Hydrophilic Poly(Carboxybetaine Methacrylate) Polymers on Hydrophobic and Hydrophilic Surfaces.

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8.  Microfluidic device for robust generation of two-component liquid-in-air slugs with individually controlled composition.

Authors:  Kan Liu; Yi-Chun Chen; Hsian-Rong Tseng; Clifton Kwang-Fu Shen; R Michael van Dam
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9.  The use of polyurethane as an elastomer in thermoplastic microfluidic devices and the study of its creep properties.

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10.  Digitally programmable microfluidic automaton for multiscale combinatorial mixing and sample processing.

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Journal:  Lab Chip       Date:  2012-11-22       Impact factor: 6.799

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