The non-LTE formation of the Fe I 6173 A line in the solar atmosphere
arXiv:2211.10236 · doi:10.1051/0004-6361/202245130
Abstract
The current analysis is dedicated to a detailed investigation of the non-Local Thermodynamic Equilibrium (NLTE) effects influencing the formation of the Fe I 6173 A line, which is widely used by many instruments including the Helioseismic and Magnetic Imager (HMI) on-board the Solar Dynamics Observatory (SDO) and the Polarimetric and Helioseismic Imager on board the Solar Orbiter. We synthesize the Stokes profiles in a snapshot of a three dimensional magnetohydrodynamic simulation of the solar photosphere under both LTE and NLTE conditions. The simulation cube contains a sunspot and a plage region around it. The LTE and NLTE Stokes profiles formed in different features are compared and analysed. NLTE effects are evident in both intensity and polarization profiles. For the 6173 A line, UV overionization is the dominant NLTE mechanism, and scattering effects are much less important. In addition to Fe, an NLTE treatment of Si, Mg and Al is necessary to set the right photon density in the UV. This is found to further enhance the LTE departures compared to the case where Fe alone is treated in NLTE. These effects in the Stokes profiles survive even when the profiles are averaged spatially or sampled on a coarse wavelength grid such as that used by the SDO/HMI and other magnetographs. The deviations from the LTE profiles are stronger in the Fe I 6173 A compared to the 6301 A - 6302 A lines because in case of the latter, line scattering compensates the effect of UV overionization. Based on the nature of departures from LTE, treating the 6173 A line in LTE will likely result in an over-estimation of temperature and an under-estimation of the magnetic field strength.
Accepted for publication in A&A
References in corpus (12)
- The Solar Orbiter mission -- Science overview
- RH 1.5D: a massively parallel code for multi-level radiative transfer with partial frequency redistribution and Zeeman polarisation
- The Helioseismic and Magnetic Imager (HMI) Vector Magnetic Field Pipeline: Optimization of the Spectral Line Inversion Code
- Stratification of physical parameters in a C-class solar flare using multi-line observations
- Signatures of ubiquitous magnetic reconnection in the lower solar atmosphere
- The influence of NLTE effects in Fe I lines on an inverted atmosphere I. 6301 A and 6302 A lines formed in 1D NLTE
- Properties of ubiquitous magnetic reconnection events in the lower solar atmosphere
- Active region chromospheric magnetic fields
- Heating of the solar chromosphere through current dissipation
- Flare Induced Photospheric Velocity Diagnostics
- Influence of NLTE effects in Fe I lines on inverted atmosphere II. 6301 A and 6302 A lines formed in 3DNLTE
- Signatures of the impact of flare ejected plasma on the photosphere of a sunspot light-bridge
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- Three-dimensional non-LTE radiative transfer effects in Fe I lines IV. Line formation at high spatial resolution
- Formation of chromospheric Fe I lines in the near ultraviolet in 1D atmospheres
- Multi-height Identification of Sausage and Fluting Eigenmodes in a Solar Pore