Title :
Design of a single-fiber, wavelength-resolved system for monitoring deep tissue oxygenation
Author :
Linhui Yu ; Murari, Kartikeya
Author_Institution :
Dept. of Electr. & Comput. Eng., Univ. of Calgary, Calgary, AB, Canada
Abstract :
We propose a single-fiber, zero source-detector separation system with wavelength-resolved detection for measuring oxygen saturation in deep brain structures. The system consists of a white light emitting diode (LED) source, optics to couple light into a 240-μm-diameter fiber, a beam splitter to separate the collected from the delivered photons and a spectrometer for detection. Depth resolution is achieved by inserting the fiber, comparable in size to microelectrodes used for electrophysiology, into the tissue of interest. Since most of the diffuse reflected light travels through a small volume at the tip of the fiber, this arrangement allows efficient collection of signal. Fresnel reflections are minimized using polarizers. Monte Carlo simulations across 400-1000 nm indicate that ~0.5% of the incident light can be collected and effectively interrogate a ~0.02 mm3 volume at the fiber tip. System design, characterization data and phantom experiments using an absorptive dye in scattering media are presented. The simple nature of the instrumentation can potentially lead to a miniaturized system capable of detecting oxygen saturation in deep brain structures in freely-moving animals.
Keywords :
Monte Carlo methods; biochemistry; biological tissues; biomedical equipment; brain; dyes; light emitting diodes; light reflection; light scattering; light sources; neurophysiology; optical fibres; oximetry; oxygen; patient monitoring; phantoms; spectrochemical analysis; Fresnel reflection minimization; Monte Carlo simulations; O2; absorptive dye; beam splitter; characterization data; deep brain structures; deep tissue oxygenation monitoring; depth resolution; diffuse light reflection; electrophysiology; fiber diameter; fiber insertion; freely-moving animal brain structures; incident light collection; light coupling; microelectrode size; miniaturized system; optics; oxygen saturation measurement; phantom experiments; photon collection; photon delivery; photon detection; polarizers; single-fiber system design; size 240 mum; spectrometer; wavelength 400 nm to 1000 nm; wavelength-resolved detection; wavelength-resolved system design; white LED source; white light emitting diode source; zero source-detector separation system; Absorption; Detectors; Lenses; Light emitting diodes; Phantoms; Photonics; Scattering;
Conference_Titel :
Engineering in Medicine and Biology Society (EMBC), 2014 36th Annual International Conference of the IEEE
Conference_Location :
Chicago, IL
DOI :
10.1109/EMBC.2014.6944428