Literature DB >> 22257104

Lifting gate polydimethylsiloxane microvalves and pumps for microfluidic control.

Jungkyu Kim1, Minjee Kang, Erik C Jensen, Richard A Mathies.   

Abstract

We describe the development and characterization of pneumatically actuated "lifting gate" microvalves and pumps. A fluidic layer containing the gate structure and a pneumatic layer are fabricated by soft-lithography in PDMS and bonded permanently with an oxygen plasma treatment. The microvalve structures are then reversibly bonded to a featureless glass or plastic substrate to form hybrid glass-PDMS and plastic-PDMS microchannel structures. The break-through pressures of the microvalve increase linearly up to 65 kPa as the closing pressure increases. The pumping capability of these structures ranges from the nanoliter to microliter scale depending on the number of cycles and closing pressure employed. The micropump structures exhibit up to 86.2% pumping efficiency from flow rate measurements. The utility of these structures for integrated sample processing is demonstrated by performing an automated immunoassay. These lifting gate valve and pump structures enable facile integration of complex microfluidic control systems with a wide range of lab-on-a-chip substrates.

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Year:  2012        PMID: 22257104      PMCID: PMC3327513          DOI: 10.1021/ac202934x

Source DB:  PubMed          Journal:  Anal Chem        ISSN: 0003-2700            Impact factor:   6.986


  23 in total

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8.  Microvalve Enabled Digital Microfluidic Systems for High Performance Biochemical and Genetic Analysis.

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  31 in total

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6.  Microfluidic Valves Made From Polymerized Polyethylene Glycol Diacrylate.

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7.  A microfluidic alternating-pull-push active digitization method for sample-loss-free digital PCR.

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Review 8.  A Decade of Organs-on-a-Chip Emulating Human Physiology at the Microscale: A Critical Status Report on Progress in Toxicology and Pharmacology.

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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.  Hybrid optofluidic integration.

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