Spectral response of optical fiber probe with closely spaced fibers

被引:1
|
作者
Jacques, Steven L. [1 ]
机构
[1] Univ Washington, Dept Bioengn, Seattle, WA 98195 USA
关键词
Optical fiber; spectroscopy; Monte Carlo; REFLECTANCE SPECTROSCOPY; DIFFUSE-REFLECTANCE; DIAGNOSIS; CANCER;
D O I
10.21037/qims-20-816
中图分类号
R8 [特种医学]; R445 [影像诊断学];
学科分类号
1002 ; 100207 ; 1009 ;
摘要
Background: Optical fiber probe spectroscopy can characterize the blood content, hemoglobin oxygen saturation, water content, and scattering properties of a tissue. A narrow probe using closely spaced fibers can access and characterize a local tissue site, but analysis requires the proper light transport theory. Methods: Monte Carlo simulations of photon transport specified the response of a two-fiber probe as a function of optical properties in a homogeneous tissue. The simulations used the dimensions of a commercial fiber probe (400-micron-diameter fibers separated by 80-microns of cladding) to calculate the response to a range of 20 absorption and 20 reduced scattering values. The 400 simulations yielded an analysis grid (lookup table) to interpolate the probe response to any given pair of absorption and scattering properties. Results: The probe in contact with tissue is not sensitive to low absorption but sensitive to scattering, as occurs for red to near-infrared spectra. The probe is sensitive to both absorption and scattering for shorter visible spectra (purple-orange). The non-contact probe held above the tissue delivers light to/from a spot on the tissue and fails to collect light that spreads laterally to escape outside the collection spot. Such partial collection can distort the spectra. Conclusions: Optical fiber spectroscopy using closely spaced fibers requires proper calibration. An analysis subroutine is provided for analysis of a two-fiber probe with the dimensions of a commercial probe (Ocean Insight), but the method can be applied to any probe design. A closely spaced fiber probe can document blood in the shorter visible wavelengths, but has difficulty detecting red and near-infra-red absorption. Hence detection of hydration is difficult. The strength of the closely spaced fiber probe is detecting scattering that depends on tissue structure at the micron to sub-micron scale.
引用
收藏
页码:1023 / +
页数:14
相关论文
共 50 条
  • [21] Optical detection of closely spaced sources for improved space situational awareness
    Cunningham, Patrick
    Cain, Stephen
    SENSORS AND SYSTEMS FOR SPACE APPLICATIONS IX, 2016, 9838
  • [23] Investigation of the electromagnetic induction spatial response of two closely spaced targets
    McMichael, IT
    Nelson, CV
    DETECTION AND REMEDIATION TECHNOLOGIES FOR MINES AND MINELIKE TARGETS VIII, PTS 1 AND 2, 2003, 5089 : 894 - 903
  • [24] Closely spaced dual-wavelength fiber laser using an ultranarrow bandwidth optical filter for low radio frequency generation
    Ahmad, H.
    Razak, N. F.
    Zulkifli, M. Z.
    Muhammad, F. D.
    Munajat, Y.
    Harun, S. W.
    APPLIED OPTICS, 2014, 53 (19) : 4123 - 4127
  • [25] A FUNDAMENTAL ALGORITHM FOR POWER ESTIMATES OF CLOSELY SPACED SPECTRAL SOURCES IN HIGH NOISE BACKGROUNDS
    SILVERSTEIN, SD
    ZOLTOWSKI, MD
    IEEE TRANSACTIONS ON CIRCUITS AND SYSTEMS, 1991, 38 (05): : 562 - 564
  • [27] Optical extinction by closely spaced parallel cylinders inside a finite dielectric slab
    Lee, Siu-Chun
    JOURNAL OF THE OPTICAL SOCIETY OF AMERICA A-OPTICS IMAGE SCIENCE AND VISION, 2006, 23 (09) : 2219 - 2232
  • [28] An erosional hiatus in Chinese loess sequences revealed by closely spaced optical dating
    Lu Huayu
    Stevens, Thomas
    Yi Shuangwen
    Sun Xuefeng
    CHINESE SCIENCE BULLETIN, 2006, 51 (18): : 2253 - 2259
  • [29] Measurement of the evaporation rates of closely spaced flowing droplets by optical cavity resonances
    Swindal, JC
    Chen, G
    Scheschak, K
    Chang, RK
    Jackson, T
    ATOMIZATION AND SPRAYS, 1996, 6 (03) : 331 - 351
  • [30] Local and Spectral Characterization of Optical Fibers and Fiber Bragg Gratings with Low Coherence Interferometry
    Gaillard, V.
    Aduriz, X.
    Daher, N.
    Chapeleau, X.
    Leduc, D.
    Lupi, C.
    Traynor, N.
    Casari, P.
    Boisrobert, C.
    FIBER AND INTEGRATED OPTICS, 2009, 28 (01) : 108 - 126