DocumentCode :
24016
Title :
Implantable thin NIRS probe design and sensitivity distribution analysis
Author :
Niwayama, Masatsugu ; Yamakawa, Takeshi
Author_Institution :
Dept. of Electr. & Electron. Eng., Shizuoka Univ., Hamamatsu, Japan
Volume :
50
Issue :
5
fYear :
2014
fDate :
Feb. 27 2014
Firstpage :
346
Lastpage :
348
Abstract :
An ultra-thin optical probe based on spatially resolved near infrared spectroscopy (NIRS) is developed and the measurement sensitivity of cerebral tissue using minimally invasive implantation of the optical probe is examined. The optical sensor head consists of bare chips of light-emitting diodes and photodiodes, which were mounted on a polyimide-based flexible substrate. The minimum and maximum thicknesses of the sensor head were 80 and 300 μm, respectively. The light propagation of the NIRS measurement with implanted optical sensor was analysed using the Monte Carlo simulation based on transport theory. The optical path lengths for brain and scalp were 2.3 times and 1/20th, respectively, as compared with generally available NIRS probes, which were attached on the body surface. The influences of the optical block on measurement sensitivity were revealed, and the volume of the sensor head was minimised. Findings also show that the sensitivity distribution is adjustable by changing the medium between sources and detectors.
Keywords :
Monte Carlo methods; bio-optics; biological tissues; biomedical measurement; brain; infrared spectroscopy; light emitting diodes; photodiodes; prosthetics; transport processes; Monte Carlo simulation; NIRS measurement; bare LED chips; bare photodiode chips; brain optical path length; cerebral tissue measurement sensitivity; implantable thin NIRS probe design; implanted optical sensor; light emitting diodes; light propagation; maximum sensor head thickness; minimally invasive optical probe implantation; minimum sensor head thickness; optical block; optical sensor head; polyimide based flexible substrate; scalp optical path length; sensitivity distribution analysis; size 300 mum; size 80 mum; spatially resolved NIRS; spatially resolved near infrared spectroscopy; transport theory; ultrathin optical probe;
fLanguage :
English
Journal_Title :
Electronics Letters
Publisher :
iet
ISSN :
0013-5194
Type :
jour
DOI :
10.1049/el.2013.3921
Filename :
6759689
Link To Document :
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