Jb. Fishkin et al., GIGAHERTZ PHOTON DENSITY WAVES IN A TURBID MEDIUM - THEORY AND EXPERIMENTS, Physical review. E, Statistical physics, plasmas, fluids, and related interdisciplinary topics, 53(3), 1996, pp. 2307-2319
The predictions of the frequency-domain standard diffusion equation (S
DE) model for light propagation in an infinite turbid medium diverge f
rom the more complete P-1 approximation to the linear Boltzmann transp
ort equation at intensity modulation frequencies greater than several
hundred MHz. The P-1 approximation is based on keeping only the terms
l = 0 and l = 1 in the expansion of the angular photon density in sphe
rical harmonics, and the nomenclature P-1 approximation is used since
the spherical harmonics of order l = 1 can be written in terms of the
first order Legendre polynomial, which is traditionally represented by
the symbol P-1. Frequency-domain data acquired in a quasi-infinite tu
rbid medium at modulation frequencies ranging from 0.38 to 3.2 GHz usi
ng a superheterodyning microwave detection system were analyzed using
expressions derived from both the P-1 approximation equation and the S
DE. This analysis shows that the P-1 approximation provides a more acc
urate description of the data over this range of modulation frequencie
s. Some researchers have claimed that the P-1 approximation predicts t
hat a light pulse should propagate with an average speed of c/root 3 i
n a thick turbid medium. However, an examination of the Green's functi
on that we obtained from the frequency-domain P-1 approximation model
indicates that a photon density wave phase velocity of c/root 3 is onl
y asymptotically approached in a regime where the light intensity modu
lation frequency aproaches infinity. The Fourier transform of this fre
quency-domain result shows that in the time domain, the P-1 approximat
ion predicts that only the leading edge of the pulse (i.e., the photon
s arriving at the detector at the earliest time) approaches a speed of
c/root 3.