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  5. The GAPS Programme at TNG XXXIX. Multiple Molecular Species in the Atmosphere of the Warm Giant Planet WASP-80 b Unveiled at High Resolution with GIANO-B
 

The GAPS Programme at TNG XXXIX. Multiple Molecular Species in the Atmosphere of the Warm Giant Planet WASP-80 b Unveiled at High Resolution with GIANO-B

Journal
THE ASTRONOMICAL JOURNAL  
Date Issued
2022
Author(s)
Carleo, I.
•
GIACOBBE, Paolo  
•
Guilluy, G.  
•
Cubillos, P.E.
•
BONOMO, ALDO STEFANO  
•
SOZZETTI, Alessandro  
•
Brogi, M.
•
Gandhi, S.
•
Fossati, L.
•
TURRINI, Diego  
•
BIAZZO, Katia  
•
BORSA, Francesco  
•
LANZA, Antonino Francesco  
•
Malavolta, L.  
•
MAGGIO, Antonio  
•
Mancini, L.
•
MICELA, Giuseppina  
•
PINO, Lorenzo  
•
PORETTI, Ennio  
•
RAINER, Monica  
•
SCANDARIATO, GAETANO  
•
SCHISANO, EUGENIO  
•
ANDREUZZI, Gloria  
•
BIGNAMINI, ANDREA  
•
COSENTINO, Rosario  
•
Fiorenzano, A.
•
Harutyunyan, A.
•
MOLINARI, Emilio Carlo  
•
Pedani, M.
•
Redfield, S.
•
Stoev, H.
DOI
10.3847/1538-3881/ac80bf
Abstract
Detections of molecules in the atmosphere of gas giant exoplanets allow us to investigate the physico-chemical properties of the atmospheres. Their inferred chemical composition is used as tracer of planet formation and evolution mechanisms. Currently, an increasing number of detections is showing a possible rich chemistry of the hotter gaseous planets, but whether this extends to cooler giants is still unknown. We observed four transits of WASP-80 b, a warm transiting giant planet orbiting a late-K dwarf star with the near-infrared GIANO-B spectrograph installed at the Telescopio Nazionale Galileo and performed high-resolution transmission spectroscopy analysis. We report the detection of several molecular species in its atmosphere. Combining the four nights and comparing our transmission spectrum to planetary atmosphere models containing the signature of individual molecules within the cross-correlation framework, we find the presence of H2O, CH4, NH3, and HCN with high significance, tentative detection of CO2, and inconclusive results for C2H2 and CO. A qualitative interpretation of these results, using physically motivated models, suggests an atmosphere consistent with solar composition and the presence of disequilibrium chemistry and we therefore recommend the inclusion of the latter in future modeling of sub-1000 K planets.
Volume
164
Issue
3
Start page
101
Uri
http://hdl.handle.net/20.500.12386/34865
Url
https://iopscience.iop.org/article/10.3847/1538-3881/ac80bf
http://www.scopus.com/inward/record.url?eid=2-s2.0-85136641288&partnerID=MN8TOARS
Issn Identifier
0004-6256
Rights
open.access
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