[en] Context. M-dwarf stars are the most common of potential exoplanet host stars in the Galaxy. It is therefore very important to understand planetary systems orbiting such stars and to determine the physical parameters of such planets with high precision. Also with the launch of the James Webb Space Telescope (JWST) the observation of atmospheric parameters of planets orbiting these stars has begun. It is therefore required to determine properties of potential targets. <BR /> Aims: Two planets around the red dwarf TOI-776 were detected by TESS. The objective of our study was to use transit observations obtained by the CHEOPS space mission to improve the current precision of the planetary radii, as well as additional radial velocity (RV) data in order to improve mass estimates of the two planets. Using these quantities, we wanted to derive the bulk densities of those planets, improving the precision in earlier results, and use this information to put them in context of other exoplanetary systems involving very low mass stars. <BR /> Methods: Utilizing new transit data from the CHEOPS satellite and its photometric telescope, we obtained very high precision planetary transit measurements. Interpretation of these provides updated planetary radii, along with other system parameters. A concurrent ESO large observing program using the high precision spectrograph HARPS has doubled the available radial velocity data. Calculating the power spectrum of a number of stellar activity indices we update the previously estimated stellar rotation period to a lower value. <BR /> Results: The CHEOPS data provide precise transit depths of 909 and 1177 ppm translating into radii of R<SUB>b</SUB> = 1.798<SUB>−0.077</SUB><SUP>+0.078</SUP> R<SUB>⊕</SUB> and R<SUB>c</SUB> = 2.047<SUB>−0.078</SUB><SUP>+0.081</SUP> R<SUB>⊕</SUB>, respectively. Our interpretation of the radial velocities and activity indicator time series data estimates a stellar rotation period for this early M dwarf of ~21.1 days. A further multi-dimensional Gaussian process approach confirm this new estimate. By performing a Skew-Normal (SN) fit onto the Cross Correlation Functions we extracted the RV data and the activity indicators to estimate the planetary masses, obtaining M<SUB>b</SUB> = 5.0<SUB>−1.6</SUB><SUP>+1.6</SUP> M<SUB>⊕</SUB> and M<SUB>c</SUB> = 6.9<SUB>−2.5</SUB><SUP>+2.6</SUP> M<SUB>⊕</SUB>. <BR /> Conclusions: We improve the precision in planetary radius for TOI-776 b and c by a factor of more than two. Our data and modelling give us parameters of both bodies consistent with mini-Neptunes, albeit with a relatively high density. The stellar activity of TOI-776 is found to have increased by a factor larger than 2 since the last set of observations. <P />Radial velocity data are available at the CDS to <A href="https://cdsarc.cds.unistra.fr/">cdsarc.cds.unistra.fr</A> (ftp://130.79.128.5) or via <A href="https://cdsarc.cds.unistra.fr/viz-bin/cat/J/A+A/684/A12">https://cdsarc.cds.unistra.fr/viz-bin/cat/J/A+A/684/A12</A> <P />This article uses data from CHEOPS programme CH_PR100031.
Disciplines :
Space science, astronomy & astrophysics
Author, co-author :
Fridlund, M.; Onsala Space Observatory, Leiden Observatory
Georgieva, I. Y.; Onsala Space Observatory
Bonfanti, A.; Austrian Institute of Space Science Research
Alibert, Y.; University of Bern, Switzerland
Persson, C. M.; Onsala Space Observatory
Gandolfi, D.; University of Turin, Department of Physics
Beck, M.; University of Geneva, Astronomical Observatory
Deline, A.; University of Geneva, Astronomical Observatory
Csizmadia, Sz.; Helmholtz Institute for Planetary Research, Berlin
Davies, M. B.; University of Lund, Sweden
Deeg, H.; Astrophysical Institute of the Canaries, University of La Laguna, Department of Astrophysics
Deleuil, M.; Aix-Marseille Universite, Laboratoire d'Astrophysique
Delrez, Laetitia ; Université de Liège - ULiège > Département d'astrophysique, géophysique et océanographie (AGO) > Exoplanets in Transit: Identification and Characterization
Demangeon, O. D. S.; University of Porto, Center for Astrophysics, University of Porto, Center for Astrophysics
Demory, B. -O.; University of Bern, Switzerland, University of Bern, Switzerland
Ehrenreich, D.; University of Geneva, Astronomical Observatory, University of Geneva, Switzerland
Erikson, A.; Helmholtz Institute for Planetary Research, Berlin
Esposito, M.; Thuringer Landessternwarte Tautenburg, Germany
Fortier, A.; University of Bern, Switzerland, University of Bern, Switzerland
Gillon, Michaël ; Université de Liège - ULiège > Département d'astrophysique, géophysique et océanographie (AGO)
Güdel, M.; University of Vienna, Department of Astronomy
Heng, K.; University of Bern, Switzerland, University of Leicester, Department of Physics and Astronomy
Isaak, K. G.; European Space Research and Technology Centre
Kiss, L. L.; Konkoly Observatory, Eotvos Lorand University, Hungary
Korth, J.; Onsala Space Observatory, Lund Observatory
Laskar, J.; Observatoire de Paris, Institut de Mecanique Celeste et de Calcul des Ephemerides
Lecavelier des Etangs, A.; Institut d'Astrophysique de Paris
Lendl, M.; University of Geneva, Astronomical Observatory
Livingston, J.; Center for Astrobiology, Madrid, National Astronomical Observatory of Japan, University of Tokyo, Department of Astronomy, Graduate University for Advanced Studies, Department of Astronomical Science
Lovis, C.; University of Geneva, Astronomical Observatory
Magrin, D.; Astronomical Observatory of Padua
Maxted, P. F. L.; Keele University, Department of Physics and Astrophysics
Muresan, A.; Onsala Space Observatory
Nascimbeni, V.; Astronomical Observatory of Padua
Ottensamer, R.; University of Vienna, Department of Astronomy
Pagano, I.; Astronomical Observatory of Catania
Pallé, E.; Astrophysical Institute of the Canaries
Peter, G.; German Aerospace Center, Berlin
Piotto, G.; Astronomical Observatory of Padua, University of Padua, Department of Physics and Astronomy
Pollacco, D.; University of Warwick, Department of Physics
Queloz, D.; ETH Zurich, Department of Physics, Wolfgang-Pauli-Strasse 2, 8093, Zurich, Switzerland, Cavendish Laboratory, JJ Thomson Avenue, Cambridge, CB3 0HE, UK
Ragazzoni, R.; Astronomical Observatory of Padua, University of Padua, Department of Physics and Astronomy
Rando, N.; European Space Research and Technology Centre
Rauer, H.; Helmholtz Institute for Planetary Research, Berlin, Technical University of Berlin, Center for Astronomy and Astrophysics, Free University of Berlin, Department of Geosciences
Redfield, S.; Wesleyan University, Department of Astronomy
Ribas, I.; Institute of Space Studies, Catalona, Institute of Space Studies, Catalona
Santos, N. C.; University of Porto, Center for Astrophysics, University of Porto, Center for Astrophysics
Scandariato, G.; Astronomical Observatory of Catania
Ségransan, D.; University of Geneva, Astronomical Observatory
Serrano, L. M.; University of Turin, Department of Physics
Simon, A. E.; University of Bern, Switzerland
Smith, A. M. S.; Helmholtz Institute for Planetary Research, Berlin
Steller, M.; Austrian Institute of Space Science Research
Szabó, Gy. M.; Eotvos Lorand University, Department of Astronomy, Eotvos Lorand University, Hungary
Thomas, N.; University of Bern, Switzerland
Udry, S.; University of Geneva, Astronomical Observatory
Van Eylen, V.; University College London, Mullard Space Science Laboratory
Van Grootel, Valérie ; Université de Liège - ULiège > Département d'astrophysique, géophysique et océanographie (AGO) > Astrophysique stellaire théorique et astérosismologie
Walton, N. A.; University of Cambridge, Institute of Astronomy
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