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GrzybowskiBartosz Andrzej

Grzybowski, Bartosz A.
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Design, Implementation, Simulation, and Visualization of a Highly Efficient RIM Microfluidic Mixer for Rapid Freeze-Quench of Biological Samples

Author(s)
Schmidt, BryanMahmud, GoherSoh, SiowlingKim, Sun HeePage, TaylorO'Halloran, Thomas V.Grzybowski, Bartosz A.Hoffman, Brian M.
Issued Date
2011-08
DOI
10.1007/s00723-011-0195-7
URI
https://scholarworks.unist.ac.kr/handle/201301/33181
Fulltext
https://link.springer.com/article/10.1007/s00723-011-0195-7
Citation
APPLIED MAGNETIC RESONANCE, v.40, no.4, pp.415 - 425
Abstract
Rapid freeze-quench (RFQ) trapping of short-lived reaction intermediates for spectroscopic study plays an important role in the characterization of biological reactions. Recently, there has been considerable effort to achieve sub-millisecond reaction deadtimes. We present here a new, robust, high-velocity microfluidic mixer that enables such rapid freeze-quenching. It is a based on the mixing method of two impinging jets commonly used in reaction injection molding of plastics. This method achieves efficient mixing by inducing chaotic flow at relatively low Reynolds numbers (Re = 140). We present the first mathematical simulation and microscopic visualization of mixing in such RFQ micromixers, the results of which show that the impinging solutions efficiently mix within the mixing chamber. These tests, along with a practical demonstration in an RFQ setup that involves copper wheels, show that this new mixer can in practice provide reaction deadtimes as low as 100 mu s.
Publisher
SPRINGER WIEN
ISSN
0937-9347
Keyword
PARAMAGNETIC-RESONANCE SPECTROSCOPYREYNOLDS-NUMBERDEVICEOXIDASESITE

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