DocumentCode :
56870
Title :
Clear Microfluidics Imaging Through Flowing Blood by Digital Holography
Author :
Bianco, V. ; Paturzo, Melania ; Finizio, A. ; Calabuig, Alejandro ; Javidi, Bahram ; Ferraro, Pietro
Author_Institution :
INO (Nat. Inst. of Opticts), Pozzuoli, Italy
Volume :
20
Issue :
3
fYear :
2014
fDate :
May-June 2014
Firstpage :
89
Lastpage :
95
Abstract :
Achieving a clear vision through turbid fluids is a highly desirable goal in microfluidics. In particular, observing particles dipped inside blood shows fascinating perspectives in all fields of bio-medical research. White-light microscopy cannot provide clear imaging due to the strong scattering of light by red blood cells. Here we solve the problem by Digital Holography microscopy. We show that, in cases where the blood flows along a microfluidic channel at sufficient speed, the hologram acts as a selective filter. This occurs due to the Doppler frequency shift experienced by the photons hitting the red blood cells, discarding the unwanted scattering. In cases where the blood flow is not quick enough to take advantage of the Doppler shift, multiple holograms can be processed to produce a clear image of the object. We show that the correlation coefficients between multiple acquisitions at different fluid speeds can be adopted to study the visibility of the fringes due to the moving colloidal particles in the medium. Hence, we estimate the threshold velocity required to completely discard all the scattered photons. In this way the object is seen as dipped in a transparent liquid thus completely eliminating the negative effect of turbidity on the imaging.
Keywords :
Doppler shift; bio-optics; bioMEMS; blood flow measurement; cellular transport; colloids; holography; light scattering; microchannel flow; optical microscopy; turbidity; Doppler frequency shift; biomedical research; blood flow; clear microfluidic imaging; colloidal particles; correlation coefficient; digital holography microscopy; fluid speeds; fringe visibility; light scattering; microfluidic channel; multiple hologram; red blood cell; selective filter; threshold velocity; transparent liquid; turbid fluids; turbidity negative effect; unwanted scattering; white-light microscopy; Blood; Fluids; Microfluidics; Microscopy; Photonics; Scattering; Blood; digital holography; imaging through turbid media; microfluidics; scattering; speckle;
fLanguage :
English
Journal_Title :
Selected Topics in Quantum Electronics, IEEE Journal of
Publisher :
ieee
ISSN :
1077-260X
Type :
jour
DOI :
10.1109/JSTQE.2013.2286075
Filename :
6636048
Link To Document :
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