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Multicolour photometry for exoplanet candidate validation

Authors :
Parviainen, Hannu
Tingley, Brandon
Deeg, Hans. J.
Palle, Enric
Alonso, Roi
Rodriguez, Pilar Montanes
Murgas, Felipe
Narita, Norio
Fukui, Akihiko
Kusakabe, Nobuhiko
Tamura, Motohide
Nishiumi, Taku
Prieto-Arranz, Jorge
Klagyivik, Peter
Béjar, Victor J. S.
Crouzet, Nicolas
Mori, Mayuko
Soto, Diego Hidalgo
Barris, Núria Casasayas
Luque, Rafael
Source :
A&A 630, A89 (2019)
Publication Year :
2019

Abstract

Context. The TESS and PLATO missions are expected to find vast numbers of new transiting planet candidates. However, only a fraction of these candidates will be legitimate planets, and the candidate validation will require a significant amount of follow-up resources. Radial velocity follow-up can be carried out only for the most promising candidates around bright, slowly rotating, stars. Thus, before devoting RV resources to candidates, they need to be vetted using cheaper methods, and, in the cases for which an RV confirmation is not feasible, the candidate's true nature needs to be determined based on these alternative methods alone. Aims. We study the applicability of multicolour transit photometry in the validation of transiting planet candidates when the candidate signal arises from a real astrophysical source. We seek to answer how securely can we estimate the true uncontaminated star-planet radius ratio when the light curve may contain contamination from unresolved light sources inside the photometry aperture when combining multicolour transit observations with a physics-based contamination model. Methods. The study is based on simulations and ground-based transit observations. The analyses are carried out with a contamination model integrated into the PyTransit v2 transit modelling package, and the observations are carried out with the MuSCAT2 multicolour imager installed in the 1.5 m TCS in the Teide Observatory. Results. We show that multicolour transit photometry can be used to estimate the amount of flux contamination and the true radius ratio. Combining the true radius ratio with an estimate for the stellar radius yields the true absolute radius of the transiting object, which is a valuable quantity in statistical candidate validation, and enough in itself to validate a candidate whose radius falls below the theoretical lower limit for a brown dwarf.<br />Comment: Accepted to A&A

Details

Database :
arXiv
Journal :
A&A 630, A89 (2019)
Publication Type :
Report
Accession number :
edsarx.1907.09776
Document Type :
Working Paper
Full Text :
https://doi.org/10.1051/0004-6361/201935709