English

The atmosphere and architecture of WASP-189 b probed by its CHEOPS phase curve

Earth and Planetary Astrophysics 2022-03-14 v3 Solar and Stellar Astrophysics

Abstract

Gas giants orbiting close to hot and massive early-type stars can reach dayside temperatures that are comparable to those of the coldest stars. These "ultra-hot Jupiters" have atmospheres made of ions and atomic species from molecular dissociation and feature strong day-to-night temperature gradients. Photometric observations at different orbital phases provide insights on the planet atmospheric properties. We analyse the photometric observations of WASP-189 acquired with the instrument CHEOPS to derive constraints on the system architecture and the planetary atmosphere. We implement a light curve model suited for asymmetric transit shape caused by the gravity-darkened photosphere of the fast-rotating host star. We also model the reflective and thermal components of the planetary flux, the effect of stellar oblateness and light-travel time on transit-eclipse timings, the stellar activity and CHEOPS systematics. From the asymmetric transit, we measure the size of the ultra-hot Jupiter WASP-189 b, Rp=1.6000.016+0.017RJR_p=1.600^{+0.017}_{-0.016}\,R_J, with a precision of 1%, and the true orbital obliquity of the planetary system Ψp=89.6±1.2deg\Psi_p=89.6\pm1.2\deg (polar orbit). We detect no significant hotspot offset from the phase curve and obtain an eclipse depth δecl=96.55.0+4.5ppm\delta_\text{ecl}=96.5^{+4.5}_{-5.0}\,\text{ppm}, from which we derive an upper limit on the geometric albedo: Ag<0.48A_g<0.48. We also find that the eclipse depth can only be explained by thermal emission alone in the case of extremely inefficient energy redistribution. Finally, we attribute the photometric variability to the stellar rotation, either through superficial inhomogeneities or resonance couplings between the convective core and the radiative envelope.

Keywords

Cite

@article{arxiv.2201.04518,
  title  = {The atmosphere and architecture of WASP-189 b probed by its CHEOPS phase curve},
  author = {A. Deline and M. J. Hooton and M. Lendl and B. Morris and S. Salmon and G. Olofsson and C. Broeg and D. Ehrenreich and M. Beck and A. Brandeker and S. Hoyer and S. Sulis and V. Van Grootel and V. Bourrier and O. Demangeon and B. -O. Demory and K. Heng and H. Parviainen and L. M. Serrano and V. Singh and A. Bonfanti and L. Fossati and D. Kitzmann and S. G. Sousa and T. G. Wilson and Y. Alibert and R. Alonso and G. Anglada and T. Bárczy and D. Barrado Navascues and S. C. C. Barros and W. Baumjohann and T. Beck and A. Bekkelien and W. Benz and N. Billot and X. Bonfils and J. Cabrera and S. Charnoz and A. Collier Cameron and C. Corral van Damme and Sz. Csizmadia and M. B. Davies and M. Deleuil and L. Delrez and T. de Roche and A. Erikson and A. Fortier and M. Fridlund and D. Futyan and D. Gandolfi and M. Gillon and M. Güdel and P. Gutermann and J. Hasiba and K. G. Isaak and L. Kiss and J. Laskar and A. Lecavelier des Etangs and C. Lovis and D. Magrin and P. F. L. Maxted and M. Munari and V. Nascimbeni and R. Ottensamer and I. Pagano and E. Pallé and G. Peter and G. Piotto and D. Pollacco and D. Queloz and R. Ragazzoni and N. Rando and H. Rauer and I. Ribas and N. C. Santos and G. Scandariato and D. Ségransan and A. E. Simon and A. M. S. Smith and M. Steller and Gy. M. Szabó and N. Thomas and S. Udry and I. Walter and N. Walton},
  journal= {arXiv preprint arXiv:2201.04518},
  year   = {2022}
}

Comments

25 pages, 16 figures, 5 tables (including the appendix); published in A&A