The impact of quantum interferences between different J-levels on scattering polarization in spectral lines
Luca Belluzzi, Javier Trujillo Bueno

TL;DR
This paper investigates how quantum interferences between different J-levels affect scattering polarization in spectral lines, crucial for interpreting astrophysical plasma observations, especially in the solar atmosphere.
Contribution
It provides a detailed theoretical analysis of quantum coherences between different J-levels and their impact on spectral line polarization modeling in astrophysics.
Findings
Quantum interferences can significantly influence polarization signals.
Neglecting interferences simplifies models without losing essential accuracy in certain cases.
Sensitivity of polarization to interlevel energy separation and magnetic fields is characterized.
Abstract
The spectral line polarization produced by optically pumped atoms contains a wealth of information on the thermal and magnetic structure of a variety of astrophysical plasmas, including that of the solar atmosphere. A correct decoding of such information from the observed Stokes profiles requires a clear understanding of the effects that radiatively induced quantum interferences (or coherences) between pairs of magnetic sublevels produce on these observables, in the absence and in the presence of magnetic fields of arbitrary strength. Here we present a detailed theoretical investigation on the role of coherences between pairs of sublevels pertaining to different fine-structure J-levels, clarifying when they can be neglected for facilitating the modeling of the linear polarization produced by scattering processes in spectral lines. To this end, we apply the quantum theory of spectral…
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