SOAPv4: A new step toward modeling stellar signatures in exoplanet research

Fuente: arXiv
Saved in:
Bibliographic Details
Main Authors: Cristo, E., Faria, J. P., Santos, N. C., Dethier, W., Akinsanmi, B., Barka, A., Demangeon, O., Lucero, J. P., Silva, A. M.
Format: Preprint
Published: 2025
Subjects:
Online Access:
Tags: Add Tag
No Tags, Be the first to tag this record!
_version_ 1866915542327099392
author Cristo, E.
Faria, J. P.
Santos, N. C.
Dethier, W.
Akinsanmi, B.
Barka, A.
Demangeon, O.
Lucero, J. P.
Silva, A. M.
author_facet Cristo, E.
Faria, J. P.
Santos, N. C.
Dethier, W.
Akinsanmi, B.
Barka, A.
Demangeon, O.
Lucero, J. P.
Silva, A. M.
contents We present and describe a new version of the spot oscillation and planet code, SOAPv4. Our aim is to demonstrate its capabilities in modeling stellar activity in the context of RV measurements and its effects on transmission spectra. To do this, we employed solar observations alongside synthetic spectra and compared the resulting simulations. We used SOAPv4 to simulate photospheric active regions and planetary transits for a Sun-like star hosting a hot Jupiter. By varying the input spectra, we investigated their impact on the resulting absorption spectra and compared the corresponding simulations. We then assessed how stellar activity deforms these absorption profiles. Finally, we explored the chromatic signatures of stellar activity across different wavelength ranges and discussed how such effects have been employed in the literature to confirm planet detections in radial-velocity measurements. We present the latest updates to SOAP, a tool developed to simulate active regions on the stellar disk while accounting for wavelength-dependent contrast. This functionality enables a detailed study of chromatic effects on radial-velocity measurements. In addition, SOAPv4 models planet-occulted line distortions and quantifies the influence of active regions on absorption spectra. Our simulations indicate that granulation can introduce line distortions that mimic planetary absorption features, potentially leading to misinterpretations of atmospheric dynamics. Furthermore, comparisons with ESPRESSO observations suggest that models incorporating non-local thermodynamic equilibrium effects provide an improved match to the absorption spectra of HD 209458 b, although they do not fully reproduce all observed distortions.
format Preprint
id arxiv_https___arxiv_org_abs_2510_08319
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle SOAPv4: A new step toward modeling stellar signatures in exoplanet research
Cristo, E.
Faria, J. P.
Santos, N. C.
Dethier, W.
Akinsanmi, B.
Barka, A.
Demangeon, O.
Lucero, J. P.
Silva, A. M.
Earth and Planetary Astrophysics
Solar and Stellar Astrophysics
We present and describe a new version of the spot oscillation and planet code, SOAPv4. Our aim is to demonstrate its capabilities in modeling stellar activity in the context of RV measurements and its effects on transmission spectra. To do this, we employed solar observations alongside synthetic spectra and compared the resulting simulations. We used SOAPv4 to simulate photospheric active regions and planetary transits for a Sun-like star hosting a hot Jupiter. By varying the input spectra, we investigated their impact on the resulting absorption spectra and compared the corresponding simulations. We then assessed how stellar activity deforms these absorption profiles. Finally, we explored the chromatic signatures of stellar activity across different wavelength ranges and discussed how such effects have been employed in the literature to confirm planet detections in radial-velocity measurements. We present the latest updates to SOAP, a tool developed to simulate active regions on the stellar disk while accounting for wavelength-dependent contrast. This functionality enables a detailed study of chromatic effects on radial-velocity measurements. In addition, SOAPv4 models planet-occulted line distortions and quantifies the influence of active regions on absorption spectra. Our simulations indicate that granulation can introduce line distortions that mimic planetary absorption features, potentially leading to misinterpretations of atmospheric dynamics. Furthermore, comparisons with ESPRESSO observations suggest that models incorporating non-local thermodynamic equilibrium effects provide an improved match to the absorption spectra of HD 209458 b, although they do not fully reproduce all observed distortions.
title SOAPv4: A new step toward modeling stellar signatures in exoplanet research
topic Earth and Planetary Astrophysics
Solar and Stellar Astrophysics
url https://arxiv.org/abs/2510.08319