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Determination of coherence length in biological tissues
Author(s) -
Fixler Dror,
Duadi Hamootal,
Ankri Rinat,
Zalevsky Zeev
Publication year - 2011
Publication title -
lasers in surgery and medicine
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.888
H-Index - 112
eISSN - 1096-9101
pISSN - 0196-8092
DOI - 10.1002/lsm.21047
Subject(s) - speckle pattern , laser , coherence (philosophical gambling strategy) , optics , wavelength , coherence length , diode , materials science , volumetric flow rate , optical coherence tomography , biomedical engineering , optoelectronics , physics , medicine , superconductivity , quantum mechanics
Background and Objective Lately in phototherapy the use of diodes instead of lasers was suggested for economical and practical reasons. It has been argued that lasers have no preference over diodes since they lose their coherence once penetrating biological tissues. However, this point has never been experimentally proven. In this work we, for the first time, have experimentally validated the conditions affecting the spatial coherence of a laser illumination going through a biological tissue. Study Design/Materials and Methods In our experiments we measured the spatial coherence of the light passing through phantoms containing intralipid and ink component as well as through uncooked turkey meat. We do this measuring the changes of the contrast of the speckle patterns generated due to laser illumination. Flow tunnels inside the phantoms were generated by needles in two different diameters. The measurements were performed for varied integration time, varied thickness of phantoms, and for varied flow rates. The measurement system included two excitation sources: a green doubled Nd:YAG laser at wavelength of 532 nm and an ultra high power green LED at a wavelength of 520 nm. Results It was experimentally validated that the thickness of the tissue does not change the coherence while there is no flow. Furthermore, the flow velocity and the flow volumetric rate highly affect the coherence length. Previously developed mathematical expression, in which the contrast depends on the correlation and the exposure time, was found to be compatible with the obtained experimental results. Conclusions We found that the coherence of the laser is not lost when the light goes through a static tissue but it is partially lost when there is a flow of fluid through the tissue. The volumetric flow rate is directly correlated to the loss of spatial coherence. Higher flow rate produces shorter coherence length. Lasers Surg. Med. 43:339–343, 2011. © 2011 Wiley‐Liss, Inc.

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