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Organelle scattering efficiency defined as the intensity of scattering per image area is calculated because it does not depend on organelle concentration and consequently may be applicable to a wide variety of cells.
To determinate the turbidity quantitatively, the total intensity of scattering light has been measured and quantified as number of photons by adopting the single photon detection techniques (SPDT) which has the advantage of high sensitivity.
On the other hand, the intensity of scattering attenuation changed from system to system depending on the size of dispersed phase, but a discontinuity of scattering attenuation was always observed as the phase inversion occurred.
The results showed that the profile for the intensity of scattering signals changes from concave to convex shape in the direction of width and from irregular to regular wave in the direction of depth if the opening width of the rectangular microchannel reduces from micrometer to submicrometer.
Larger globules brought a high intensity of scattering at low angles to the beam and smaller particles, and create a low-intensity signal at far wider angles.
It is known that the intensity of scattering is proportional to the square of the total volume of scattering objects.
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Only after substantial increasing of Δr 1 up to Δr 1 ≈ (2 to 3) r 0 and more and increasing of intensity of scattered radiation by system NP-shell it will be possible to visualize this system.
After laser pump irradiation and shell formation and during initial stage of shell dynamics with Δr 1 ≤ r 0, intensity of scattered radiation by system NP-shell will be decreased (see Figures 1, 2, 3 and 4), and this system could not be visualized.
s m is the intensity of scattered exciting radiation (including Raman).
The intensities of scattering at yield, depending on the scale of cavitation, were larger for the specimens crystallized at higher temperatures.
The total intensity of scatter from cells calculated from stained images, I scat (cells), is multiplied by the fraction, f, given in Table 1.
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