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The modified Beer–Lambert law revisited

Physics in Medicine and Biology · 2006 · Vol. 51(5) · pp. N91–N98
László KocsisPéter HermánAndrás Eke

Abstract

The modified Beer-Lambert law (MBLL) is the basis of continuous-wave near-infrared tissue spectroscopy (cwNIRS). The differential form of MBLL (dMBLL) states that the change in light attenuation is proportional to the changes in the concentrations of tissue chromophores, mainly oxy- and deoxyhaemoglobin. If attenuation changes are measured at two or more wavelengths, concentration changes can be calculated. The dMBLL is based on two assumptions: (1) the absorption of the tissue changes homogeneously, and (2) the scattering loss is constant. It is known that absorption changes are usually inhomogeneous, and therefore dMBLL underestimates the changes in concentrations (partial volume effect) and every calculated value is influenced by the change in the concentration of other chromophores (cross-talk between chromophores). However, the error introduced by the second assumption (cross-talk of scattering changes) has not been assessed previously. An analytically treatable special case (semi-infinite, homogeneous medium, with optical properties of the cerebral cortex) is utilized here to estimate its order of magnitude. We show that the per cent change of the transport scattering coefficient and that of the absorption coefficient have an approximately equal effect on the changes of attenuation, and a 1% increase in scattering increases the estimated concentration changes by about 0.5 microM.

Optical Imaging and Spectroscopy TechniquesPhotoacoustic and Ultrasonic ImagingNon-Invasive Vital Sign MonitoringAttenuation coefficientAttenuationChromophoreScatteringAbsorption (acoustics)WavelengthBeer–Lambert lawMaterials scienceLight scatteringOptics

MeSH terms

AbsorptionHemoglobinsModels, TheoreticalOxyhemoglobinsScattering, RadiationWaterSpectroscopy, Near-Infrared

Funding

  • Hungarian Scientific Research Fund
Citations
652
FWCI
3.35
field-weighted impact
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15
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91%
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References
Beyond the Visible—Imaging the Human Brain with Light
Journal of Cerebral Blood Flow & Metabolism · 2003 · 831 citations
Estimation of optical pathlength through tissue from direct time of flight measurement
Physics in Medicine and Biology · 1988 · 2,212 citations
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