2019A&A...629A.109S


Query : 2019A&A...629A.109S

2019A&A...629A.109S - Astronomy and Astrophysics, volume 629A, 109-109 (2019/9-1)

Remote sensing of exoplanetary atmospheres with ground-based high-resolution near-infrared spectroscopy.

SHULYAK D., RENGEL M., REINERS A., SEEMANN U. and YAN F.

Abstract (from CDS):


Context. Thanks to the advances in modern instrumentation we have learned about many exoplanets that span a wide range of masses and composition. Studying their atmospheres provides insight into planetary origin, evolution, dynamics, and habitability. Present and future observing facilities will address these important topics in great detail by using more precise observations, high-resolution spectroscopy, and improved analysis methods.
Aims. We investigate the feasibility of retrieving the vertical temperature distribution and molecular number densities from expected exoplanet spectra in the near-infrared. We use the test case of the CRIRES+ instrument at the Very Large Telescope which will operate in the near-infrared between 1 and 5µm and resolving powers of R=100000 and R=50000. We also determine the optimal wavelength coverage and observational strategies for increasing accuracy in the retrievals.
Methods. We used the optimal estimation approach to retrieve the atmospheric parameters from the simulated emission observations of the hot Jupiter HD 189733b. The radiative transfer forward model is calculated using a public version of the τ-REx software package.
Results. Our simulations show that we can retrieve accurate temperature distribution in a very wide range of atmospheric pressures between 1 bar and 10–6 bar depending on the chosen spectral region. Retrieving molecular mixing ratios is very challenging, but a simultaneous observations in two separate infrared regions around 1.6 and 2.3µm helps to obtain accurate estimates; the exoplanetary spectra must be of relatively high signal-to-noise ratio S/N≥10, while the temperature can already be derived accurately with the lowest value that we considered in this study (S/N=5).
Conclusions. The results of our study suggest that high-resolution near-infrared spectroscopy is a powerful tool for studying exoplanet atmospheres because numerous lines of different molecules can be analyzed simultaneously. Instruments similar to CRIRES+ will provide data for detailed retrieval and will provide new important constraints on the atmospheric chemistry and physics.

Abstract Copyright: © D. Shulyak et al. 2019

Journal keyword(s): planets and satellites: atmospheres - planets and satellites: individual: HD 189733 b - radiative transfer - methods: numerical

Simbad objects: 17

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Number of rows : 17
N Identifier Otype ICRS (J2000)
RA
ICRS (J2000)
DEC
Mag U Mag B Mag V Mag R Mag I Sp type #ref
1850 - 2024
#notes
1 * ups And b Pl 01 36 47.8415443907 +41 24 19.651368029           ~ 272 1
2 HD 10069b Pl 01 37 25.0332798696 -45 40 40.374717456           ~ 369 1
3 BD+01 316b Pl 01 46 31.8575937456 +02 42 02.030065560           ~ 205 0
4 HD 15082b Pl 02 26 51.0582618096 +37 33 01.736482032           ~ 337 1
5 HD 46375b Pl 06 33 12.6224391648 +05 27 46.528531452           ~ 70 1
6 HD 73256b Pl 08 36 23.0165447400 -30 02 15.446225796           ~ 47 1
7 HD 75289b Pl 08 47 40.3893739728 -41 44 12.455319264           ~ 89 1
8 * tau Boo b Pl 13 47 15.7381720026 +17 27 24.809555600           ~ 285 1
9 HD 143105b Pl 15 53 36.5584022016 +68 43 12.412949088           ~ 7 0
10 HD 179949b Pl 19 15 33.2300695008 -24 10 45.671448072           ~ 123 1
11 HD 185603b Pl 19 38 38.7352230144 +31 13 09.217127532           ~ 127 0
12 HD 187123b Pl 19 46 58.1122487784 +34 25 10.281404460           ~ 90 1
13 HD 189733b Pl 20 00 43.7129433648 +22 42 39.073143456           ~ 1437 1
14 HD 209458b Pl 22 03 10.7727465312 +18 53 03.549393384           ~ 1860 1
15 HD 212301b Pl 22 27 30.9220205424 -77 43 04.526779008           ~ 26 1
16 * 51 Peg b Pl 22 57 27.9804852576 +20 46 07.797040104           ~ 666 1
17 HD 217107b Pl 22 58 15.5408995872 -02 23 43.383234768           ~ 95 1

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