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Two processes cause attenuation (loss of light): a- absorption. b- scattering (re-direction).

The link between particle properties (size, composition, shape, internal structure) and IOP Emmanuel Boss. Two processes cause attenuation (loss of light): a- absorption. b- scattering (re-direction).  c = a + b. What is scattering:.

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Two processes cause attenuation (loss of light): a- absorption. b- scattering (re-direction).

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  1. The link between particle properties (size, composition, shape, internal structure) and IOPEmmanuel Boss

  2. Two processes cause attenuation (loss of light): a- absorption. b- scattering (re-direction).  c = a + b

  3. What is scattering: Scattering refers to the redirection of energy of an ‘infinite’ ‘plane-parallel’ electro-magnetic wave due to interaction with matter. By interaction we mean that the wave travels at different speed at different location within the medium due to inhomogeneities within the medium. Such inhomogeneities may be caused by particles of different optical properties within the medium or ‘fluctuations’, regions within the medium that have slightly different concentrations of molecules. The ‘relative’ index of refraction (nr) of a particle relative to the medium in which it is embedded, is the ratio of the speeds of lights: np=cmedium/cp. For a given size and shape of particle, the more different the index of refraction is from 1 the more pronounced is the scattering.

  4. What is scattering: • Scattering is the sum of: • Reflection: at a boundary of a particle with different n than the medium in which it is embedded, a certain amount of radiation is reflected back. • Refraction: at a boundary of a particle with different n than the medium in which it is embedded, a certain amount of radiation penetrates into the particle, usually at a different angle than the angle of incidence (Snell). • Diffraction: the light propagating along the boundary of the particle responds to the boundary causing a change in direction. From: http://www.cs.ucl.ac.uk/staff/S.Bhatti/D51-notes/img229.gif

  5. refraction, reflection and diffraction: Large particles: scattering is dominated by diffraction, since light going through the particles is likely to be absorbed.  Geometric optics. Response is proportional to particle’s cross-sectional area (sensitive to shape). Small particles: scattering is dominated by refraction and reflection, Rayleigh scattering. Response is proportional to particle’s volume (insensitive to shape).

  6. Optical properties Index of refraction: Absorption index: Marine particles are ‘soft’:

  7. Optical properties Optical cross section: Light attenuated by particle Cext=Geometric cross section x Light impinging on particle Similar definition for other cross sections. Link to IOPs: Optical efficiency factors:

  8. Optical regimes Size parameter: Phase shift parameter: Absorption parameter:

  9. Recap: dependence of IOP on properties of particles: The output of scattering codes for a particles with a given D/l and n is: Cross sections (C, [m2]) or efficiency factors (Q, []) for absorption, scattering and attenuation as well as the phase function (multiply by C to get angular scattering cross-section). Example: the attenuation cross-section, Cext, is the attenuation due to a single particle in a m3 of medium: c=Cext·1=Qext·pr2·1 Since the mass increase with size, it is instructive to study how the mass normalized optical properties vary as function of size and index of refraction. c/V=Cext·1/{4pr3/3}av

  10. Dependence of IOP on properties of particles: c/V=Cext·1/{4pr3/3}av Change of max with n (and l). Cext= 2·area c/V  1/D c  Volume

  11. Dependence of IOP on properties of particles: a/V=Cabs·1/{4pr3/3} n’=0.01 Little n influence Cabs= area a/V  1/D Molecular absorptionvolume. ‘Packaging’, Duysen, 1956

  12. b Dependence of IOP on properties of particles: bb/V=Cbb·1/{4pr3/3} Large n effect 0.1<D<10 contributes most Little n’ effect except at large D

  13. Lab example: general angle scattering Response of the LSS/volume to size (Baker et al., 2001):

  14. Dependence of IOP on properties of particles: b/V: b(q) / Vp n=1.05 b(q) / Vp x=4 Roesler and Boss, 2004 Near forward scattering: Strong dependence on size, less on n.

  15. Index of refraction (n) from bbp/bp: It turns out the bbp/bp is very sensitive to n and less so to the PSD: n’=0 Twardowski et al., 2001

  16. Why do we want to know n? • n correlates with density (r)  sinking rates. • n separates water-filled organic particles from inorganic particles. Zaneveld et al., 2002, OOXVI. Compiled from: Aas (1983) Carder et al. (1972) Carder et al. (1974) Babin et al., 2003

  17. IOPs and scattering theory: Provides a calibration to our sensors (LISST, bb, flow-cytometers). For a given concentration of particles of a given size and n we expect a given signal. Provides a check on our measurements (relationship between concentration, size distribution and likely optical property). Examples: 1. what is the likely c(660) for a given concentration of phytoplankton ? r=20mm [Conc.]=105/L= 108m-3 cext~2·Area= 2·p·(20)210-12m2 c=cext·[Conc]~0.25m-1 2. Babin claims that b*555~0.5m2/gr. Is it sensible? cscat~1·Area. b*555=0.5=[conc.]*cscat/ {[conc.]*volume*density}= 0.75/{r*density}. For sediments, density=2.5gr/cm3 =2.5·106gr/m3  average r~0.6mm, a realistic size.

  18. Effect of shape:

  19. OMBAR, 2007

  20. Example: VSF of natural particles

  21. Effects of internal structure. Kitchen and Zaneveld, 1992.

  22. Summary: • Size (relative to wavelength) and index of refraction are the determinant of light interaction with particles. • For particles small relative to the wavelength optical properties are proportional to particle volume and insensitive to shape. • For particles large relative to wavelength optical properties are proportional to the average cross section of the particle and thus sensitive to shape. • From all commonly used IOPs backscattering is the most sensitive to shape and internal structure (absorption the least). • More work needs to be done to elucidate that dependency. • Polarized scattering is the next frontier…

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