2019A&A...632A..63C


Query : 2019A&A...632A..63C

2019A&A...632A..63C - Astronomy and Astrophysics, volume 632A, 63-63 (2019/12-0)

Connecting planet formation and astrochemistry. A main sequence for C/O in hot exoplanetary atmospheres.

CRIDLAND A.J., VAN DISHOECK E.F., ALESSI M. and PUDRITZ R.E.

Abstract (from CDS):

To understand the role that planet formation history has on the observable atmospheric carbon-to-oxygen ratio (C/O) we have produced a population of astrochemically evolving protoplanetary disks. Based on the parameters used in a pre-computed population of growing planets, their combination allows us to trace the molecular abundances of the gas that is being collected into planetary atmospheres. We include atmospheric pollution of incoming (icy) planetesimals as well as the effect of refractory carbon erosion noted to exist in our own solar system. We find that the carbon and oxygen content of Neptune-mass planets are determined primarily through solid accretion and result in more oxygen-rich (by roughly two orders of magnitude) atmospheres than hot Jupiters, whose C/O are primarily determined by gas accretion. Generally we find a "main sequence" between the fraction of planetary mass accreted through solid accretion and the resulting atmospheric C/O; planets of higher solid accretion fraction have lower C/O. Hot Jupiters whose atmospheres have been chemically characterized agree well with our population of planets, and our results suggest that hot-Jupiter formation typically begins near the water ice line. Lower mass hot Neptunes are observed to be much more carbon rich (with 0.33≤C/O≤1) than is found in our models (C/O∼10–2), and suggest that some form of chemical processing may affect their observed C/O over the few billion years between formation and observation. Our population reproduces the general mass-metallicity trend of the solar system and qualitatively reproduces the C/O metallicity anti-correlation that has been inferred for the population of characterized exoplanetary atmospheres.

Abstract Copyright: © ESO 2019

Journal keyword(s): planets and satellites: composition - planets and satellites: atmospheres - planets and satellites: formation - astrochemistry - protoplanetary disks

Simbad objects: 11

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Number of rows : 11
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 WASP-12b Pl 06 30 32.7966092352 +29 40 20.263502460           ~ 763 1
2 WASP-19b Pl 09 53 40.0765648584 -45 39 33.057187596           ~ 370 1
3 WASP-43b Pl 10 19 38.0088913464 -09 48 22.605801336           ~ 357 1
4 Ross 905b Pl 11 42 11.0933350978 +26 42 23.650782778           ~ 810 1
5 HAT-P-26b Pl 14 12 37.5331103311 +04 03 36.116569918           ~ 162 1
6 CD-27 10695b Pl 15 59 50.9491505016 -28 03 42.312819096           ~ 261 1
7 HD 179949b Pl 19 15 33.2300695008 -24 10 45.671448072           ~ 123 1
8 HD 189733b Pl 20 00 43.7129433648 +22 42 39.073143456           ~ 1435 1
9 HD 209458b Pl 22 03 10.7727465312 +18 53 03.549393384           ~ 1859 1
10 * 51 Peg b Pl 22 57 27.9804852576 +20 46 07.797040104           ~ 666 1
11 NAME BD+37 4734Bb Pl 22 57 46.8442481880 +38 40 30.358351704           ~ 247 1

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