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Spectra of particulate backscattering in natural waters
Author(s) -
Howard R. Gordon,
Marlon R. Lewis,
Scott McLean,
Michael Twardowski,
Scott A. Freeman,
Kenneth J. Voss,
G. Chris Boynton
Publication year - 2009
Publication title -
optics express
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.394
H-Index - 271
ISSN - 1094-4087
DOI - 10.1364/oe.17.016192
Subject(s) - radiative transfer , radiance , attenuation coefficient , absorption (acoustics) , lambda , spectral line , downwelling , irradiance , absorptance , physics , spectral resolution , materials science , analytical chemistry (journal) , optics , chemistry , upwelling , geology , reflectivity , environmental chemistry , oceanography , astronomy
Hyperspectral profiles of downwelling irradiance and upwelling radiance in natural waters (oligotrophic and mesotrophic) are combined with inverse radiative transfer to obtain high resolution spectra of the absorption coefficient (a) and the backscattering coefficient (b(b)) of the water and its constituents. The absorption coefficient at the mesotrophic station clearly shows spectral absorption features attributable to several phytoplankton pigments (Chlorophyll a, b, c, and Carotenoids). The backscattering shows only weak spectral features and can be well represented by a power-law variation with wavelength (lambda): b(b) approximately lambda(-n), where n is a constant between 0.4 and 1.0. However, the weak spectral features in b(b)b suggest that it is depressed in spectral regions of strong particle absorption. The applicability of the present inverse radiative transfer algorithm, which omits the influence of Raman scattering, is limited to lambda < 490 nm in oligotrophic waters and lambda < 575 nm in mesotrophic waters.

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