DocumentCode
1160187
Title
Effects of neglecting polarization on the MODIS aerosol retrieval over land
Author
Levy, Robert C. ; Remer, Lorraine A. ; Kaufman, Yoram J.
Author_Institution
Lab. for Atmospheres, NASA Goddard Space Flight Center, Greenbelt, MD, USA
Volume
42
Issue
11
fYear
2004
Firstpage
2576
Lastpage
2583
Abstract
Reflectance measurements in the visible and infrared wavelengths, from the Moderate Resolution Imaging Spectroradiometer (MODIS), are used to derive aerosol optical thicknesses (AOTs) and aerosol properties over ocean and land surfaces, separately. Both algorithms employ radiative transfer (RT) code to create lookup tables, simulating the top-of-atmosphere (TOA) reflectance measured by the satellite. Whereas the algorithm over ocean uses a vector RT code that includes the effects of atmospheric polarization, the algorithm over land assumes scalar RT, thus neglecting polarization effects. In the red (0.66 μm) and infrared (2.12 μm) MODIS channels, scattering by molecules (Rayleigh scattering) is minimal. In these bands, the use of a scalar RT code is of sufficient accuracy to model TOA reflectance. However, in the blue (0.47 μm), the presence of larger Rayleigh scattering (optical thickness approaching 0.2) results in nonnegligible polarization. The absolute difference between vector- and scalar-calculated TOA reflectance, even in the presence of depolarizing aerosols, is large enough to lead to substantial errors in retrieved AOT. Using RT code that allows for both vector and scalar calculations, we examine the reflectance differences at the TOA, assuming discrete loadings of continental-type aerosol. We find that the differences in blue channel TOA reflectance (vector-scalar) may be greater than 0.01 such that errors in derived AOT may be greater than 0.1. Errors may be positive or negative, depending on the specific geometry, and tend to cancel out when averages over a large enough sample of satellite geometry. Thus, the neglect of polarization introduces little error into global and long-term averages, yet can produce very large errors on smaller scales and individual retrievals. As a result of this study, a future version of aerosol retrieval from MODIS over land will include polarization within the atmosphere.
Keywords
Rayleigh scattering; aerosols; atmospheric radiation; atmospheric spectra; atmospheric techniques; infrared imaging; light polarisation; radiative transfer; reflectometry; remote sensing; MODIS aerosol retrieval; Moderate Resolution Imaging Spectroradiometer; Rayleigh scattering; aerosol optical thickness; aerosol properties; atmospheric polarization; blue channel TOA reflectance; continental-type aerosol; depolarizing aerosols; infrared wavelengths; land surfaces; lookup tables; nonnegligible polarization; ocean surfaces; polarization neglection effects; radiative transfer; satellite geometry; scalar-calculated TOA reflectance; top-of-atmosphere reflectance measurement; vector-calculated TOA reflectance; visible wavelengths; Aerosols; Atmospheric modeling; MODIS; Oceans; Optical polarization; Optical scattering; Rayleigh scattering; Reflectivity; Sea measurements; Wavelength measurement; 65; Aerosol; MODIS; Moderate Imaging Spectroradiometer; land; polarization; radiative transfer;
fLanguage
English
Journal_Title
Geoscience and Remote Sensing, IEEE Transactions on
Publisher
ieee
ISSN
0196-2892
Type
jour
DOI
10.1109/TGRS.2004.837336
Filename
1356070
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