Center-to-limb variation of intensity and polarization in continuum spectra of FGK stars for spherical atmospheres
N.M. Kostogryz, I. Milic, S.V. Berdyugina, P.H. Hauschildt

TL;DR
This study models the center-to-limb variation of intensity and polarization in the continuum spectra of FGK stars with spherical atmospheres, providing detailed calculations across various stellar types and parameters.
Contribution
It presents new calculations of CLVI and CLVP for spherical stellar atmospheres using two independent radiative transfer codes, covering a wide range of stellar parameters and making results publicly available.
Findings
Lower gravity and temperature increase limb polarization in sub-giant and dwarf stars.
Giant stars show maximum polarization at high effective temperatures.
Limb polarization varies non-monotonically with effective temperature, showing minima and maxima depending on stellar type.
Abstract
One of the necessary parameters needed for the interpretation of the light curves of transiting exoplanets or eclipsing binaries, as well as interferometric measurements of a star or microlensing events is how the intensity and polarization of a light change from the center to the limb. Scattering and absorption processes in stellar atmosphere affect both the center-to limb variation of intensity (CLVI) and polarization (CLVP). In this paper, we present a study of the CLVI and CLVP in continuum spectra considering different contributions of scattering and absorption opacity for different spectral type stars with spherical atmospheres. We solve the polarized radiative transfer equation in the presence of continuum scattering, considering spherical stellar model atmospheres. We developed two independent codes based on Feautrier and short characteristics methods to cross-check our results.…
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