Photoplethysmography is a simple measurement of the variation in blood volume in tissue. It detects the pulse signal of heart beat as well as the low frequency signal of vasoconstriction and vasodilation. The transmission type measurement is limited to only a few specific positions for example the index finger that have a short path length for light. The reflectance type measurement can be conveniently applied on most parts of the body surface. This study analyzed the factors that determine the quality of reflectance photoplethysmograph signal including the emitter-detector distance, wavelength, light intensity, and optical properties of skin tissue. Light emitting diodes (LEDs) with four different visible wavelengths were used as the light emitters. A phototransistor was used as the light detector. A micro translation stage adjusts the emitter-detector distance from 2 mm to 15 mm. The reflective photoplethysmograph signals were measured on different sites. The optimal emitter-detector distance was chosen to have a large dynamic range for low frequency drifting without signal saturation and a high perfusion index. Among these four wavelengths, a yellowish green (571nm) light with a proper emitter-detection distance of 2mm is the most suitable for obtaining a steady and reliable reflectance photoplethysmograph signal Keywords—Reflectance photoplethysmograph, Perfusion index, Signal-to-noise ratio
[1]
Alan Murray,et al.
Microvascular blood flow and skin temperature changes in the fingers following a deep nspiratory gasp.
,
2002,
Physiological measurement.
[2]
Y. Mendelson,et al.
Noninvasive pulse oximetry utilizing skin reflectance photoplethysmography
,
1988,
IEEE Transactions on Biomedical Engineering.
[3]
H. Ananthaswamy,et al.
Mechanisms of induction of skin cancer by UV radiation.
,
1997,
Frontiers in bioscience : a journal and virtual library.
[4]
Qiyin Fang,et al.
Effects of fiber-optic probe design and probe-to-target distance on diffuse reflectance measurements of turbid media: an experimental and computational study at 337 nm.
,
2004,
Applied optics.
[5]
R. Anderson,et al.
The optics of human skin.
,
1981,
The Journal of investigative dermatology.
[6]
John Allen.
Photoplethysmography and its application in clinical physiological measurement
,
2007,
Physiological measurement.
[7]
J. L. Reuss,et al.
The pulse in reflectance pulse oximetry: Modeling and experimental studies
,
2004,
Journal of Clinical Monitoring and Computing.