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Auteurs principaux: Thi, Hoa Dinh, Baring, Matthew G., Hu, Kun, Harding, Alice K., Barchas, Joseph A.
Format: Preprint
Publié: 2025
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Accès en ligne:https://arxiv.org/abs/2508.00225
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author Thi, Hoa Dinh
Baring, Matthew G.
Hu, Kun
Harding, Alice K.
Barchas, Joseph A.
author_facet Thi, Hoa Dinh
Baring, Matthew G.
Hu, Kun
Harding, Alice K.
Barchas, Joseph A.
contents Soft X-ray emission from neutron stars affords powerful diagnostic tools for uncovering their surface and interior properties, as well as their geometric configurations. In the atmospheres of neutron stars, the presence of magnetic fields alters the photon-electron scattering cross sections, resulting in non-trivial angular dependence of intensity and polarization of the emergent signals. This paper presents recent developments of our Monte Carlo simulation, MAGTHOMSCATT, which tracks the complex electric field vector for each photon during its transport. Our analysis encompasses the anisotropy and polarization characteristics of X-ray emission for field strengths ranging from non-magnetic to extremely magnetized regimes that are germane to magnetars. In the very low field domain, we reproduced the numerical solution to the radiative transfer equation for non-magnetic Thomson scattering, and provided analytical fits for the angular dependence of the intensity and the polarization degree. These fits can be useful for studies of millisecond pulsars and magnetic white dwarfs. By implementing a refined injection protocol, we show that, in the magnetar regime, the simulated intensity and polarization pulse profiles of emission from extended surface regions becomes invariant with respect to the ratio of photon ($ω$) and electron cyclotron ($ω_{\rm B}$) frequencies once $ω/ ω_{\rm B} \lesssim 0.01$. This circumvents the need for simulations pertinent to really high magnetic field strengths, which are inherently slower. Our approach will be employed elsewhere to model observational data to constrain neutron star geometric parameters and properties of emitting hot spots on their surfaces.
format Preprint
id arxiv_https___arxiv_org_abs_2508_00225
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Monte Carlo Simulations of Polarized Radiative Transfer in Neutron Star Atmospheres
Thi, Hoa Dinh
Baring, Matthew G.
Hu, Kun
Harding, Alice K.
Barchas, Joseph A.
High Energy Astrophysical Phenomena
Soft X-ray emission from neutron stars affords powerful diagnostic tools for uncovering their surface and interior properties, as well as their geometric configurations. In the atmospheres of neutron stars, the presence of magnetic fields alters the photon-electron scattering cross sections, resulting in non-trivial angular dependence of intensity and polarization of the emergent signals. This paper presents recent developments of our Monte Carlo simulation, MAGTHOMSCATT, which tracks the complex electric field vector for each photon during its transport. Our analysis encompasses the anisotropy and polarization characteristics of X-ray emission for field strengths ranging from non-magnetic to extremely magnetized regimes that are germane to magnetars. In the very low field domain, we reproduced the numerical solution to the radiative transfer equation for non-magnetic Thomson scattering, and provided analytical fits for the angular dependence of the intensity and the polarization degree. These fits can be useful for studies of millisecond pulsars and magnetic white dwarfs. By implementing a refined injection protocol, we show that, in the magnetar regime, the simulated intensity and polarization pulse profiles of emission from extended surface regions becomes invariant with respect to the ratio of photon ($ω$) and electron cyclotron ($ω_{\rm B}$) frequencies once $ω/ ω_{\rm B} \lesssim 0.01$. This circumvents the need for simulations pertinent to really high magnetic field strengths, which are inherently slower. Our approach will be employed elsewhere to model observational data to constrain neutron star geometric parameters and properties of emitting hot spots on their surfaces.
title Monte Carlo Simulations of Polarized Radiative Transfer in Neutron Star Atmospheres
topic High Energy Astrophysical Phenomena
url https://arxiv.org/abs/2508.00225