Efficient single-scattering lookup table for lidar and polarimeter phytoplankton studies

Author:

Chemyakin Eduard1,Stamnes Snorre1ORCID,Allen James23,Burton Sharon P.1,Hair Johnathan1,Hostetler Chris1,Chowdhary Jacek45,van Diedenhoven Bastiaan6,Cairns Brian4

Affiliation:

1. NASA Langley Research Center (LaRC)

2. Goddard Earth Sciences Technology and Research (GESTAR) II/Morgan State University

3. NASA Goddard Space Flight Center (GSFC)

4. NASA Goddard Institute for Space Studies (GISS)

5. Columbia University

6. SRON Netherlands Institute for Space Research

Abstract

Coupled atmosphere and ocean remote sensing retrievals of aerosol, cloud, and oceanic phytoplankton microphysical properties, such as those carried out by the NASA Plankton, Aerosol, Cloud, ocean Ecosystem (PACE) mission, involve single-scattering calculations that are time consuming. Lookup tables (LUTs) exist to speed up these calculations for aerosol and water droplets in the atmosphere. In our new Lorenz–Mie lookup table, we tabulate single scattering by an ensemble of coated isotropic spheres representing oceanic phytoplankton at wavelengths from 0.355 µm. The lookup table covers phytoplankton particles with radii in the range of 0.15–100 µm at an increase of up to 104 in computational speed compared to single-scattering calculations. The allowed complex refractive indices range from 1.05 to 1.24 for the shell’s real part, from 10-7 to 0.3 for the shell’s imaginary part, from 0 to 0.001 for the core’s imaginary part, and equal to 1.02 for the core’s real part. We show that we precisely compute inherent optical properties for the phytoplankton size distributions ranging up to 5 µm for the effective radius and up to 0.6 for the effective variance. We test wavelengths from 0.355 to 1.065 µm and find that all the inherent optical properties of interest agree with the single-scattering calculations to within 1% for 99.9% of cases. We also provide an example of using the lookup table to reproduce the phytoplankton optical datasets listed in the PANGAEA database for synthetic hyperspectral algorithm development. The table together with C++, Fortran, MATLAB, and Python codes to apply different complex refractive indices and phytoplankton size distributions is freely available online.

Funder

National Aeronautics and Space Administration

Publisher

Optica Publishing Group

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