Can 1D radiative equilibrium models of faculae be used for calculating contamination of transmission spectra?
arXiv:2211.02860 · doi:10.3847/2041-8213/aca671
Abstract
The reliable characterization of planetary atmospheres with transmission spectroscopy requires realistic modeling of stellar magnetic features, since features that are attributable to an exoplanet atmosphere could instead stem from the host star's magnetic activity. Current retrieval algorithms for analysing transmission spectra rely on intensity contrasts of magnetic features from 1D radiative-convective models. However, magnetic features, especially faculae, are not fully captured by such simplified models. Here we investigate how well such 1D models can reproduce 3D facular contrasts, taking a G2V star as an example. We employ the well established radiative magnetohydrodynamic code MURaM to obtain three-dimensional simulations of the magneto-convection and photosphere harboring a local small-scale-dynamo. Simulations without additional vertical magnetic fields are taken to describe the quiet solar regions, while simulations with initially 100 G, 200 G and 300 G vertical magnetic fields are used to represent different magnetic activity levels. Subsequently, the spectra emergent from the MURaM cubes are calculated with the MPS-ATLAS radiative transfer code. We find that the wavelength dependence of facular contrast from 1D radiative-convective models cannot reproduce facular contrasts obtained from 3D modeling. This has far reaching consequences for exoplanet characterization using transmission spectroscopy, where accurate knowledge of the host star is essential for unbiased inferences of the planetary atmospheric properties.
7 pages, 2 figures, submitted to APJL
References in corpus (16)
- A Substantial Amount of Hidden Magnetic Energy in the Quiet Sun
- Numerical simulations of quiet Sun magnetism: On the contribution from a small-scale dynamo
- The solar magnetic field
- Observing the Atmospheres of Known Temperate Earth-sized Planets with JWST
- The Detectability and Characterization of the TRAPPIST-1 Exoplanet Atmospheres with JWST
- Extension of the MURaM radiative MHD code for coronal simulations
- The Transit Light Source Effect II: The Impact of Stellar Heterogeneity on Transmission Spectra of Planets Orbiting Broadly Sun-like Stars
- Solar Irradiance Variability is Caused by the Magnetic Activity on the Solar Surface
- Stellar surface inhomogeneities as a potential source of the atmospheric signal detected in the K2-18 b transmission spectrum
- On Atmospheric Retrievals of Exoplanets with Inhomogeneous Terminators
- MPS-ATLAS: A fast all-in-one code for synthesising stellar spectra
- Stellar limb darkening. A new MPS-ATLAS library for Kepler, TESS, CHEOPS, and PLATO passbands
- Small-scale Dynamo in Cool Stars: I. Changes in stratification and near-surface convection for main-sequence spectral types
- On the contribution of quiet Sun magnetism to solar irradiance variations: Constraints on quiet Sun variability and grand minimum scenarios
- Testing the solar activity paradigm in the context of exoplanet transits
- Opacity distribution functions for stellar spectra synthesis
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- Spectral variability of photospheric radiation due to faculae II: Facular contrasts for cool main-sequence stars
- JWST-TST DREAMS: NIRSpec/PRISM Transmission Spectroscopy of the Habitable Zone Planet TRAPPIST-1 e
- Testing MURaM and MPS-ATLAS against the quiet solar spectrum
- GEMS JWST: Transmission spectroscopy of TOI-5205b reveals significant stellar contamination and a metal-poor atmosphere
- Simulations of facular magnetic fields on cool stars I: Main sequence stars with solar metallicity
- Deciphering transmission spectra by exploring the solar paradigm