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Jupiter Analogues Orbit Stars with an Average Metallicity Close to that of the Sun

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arxiv 1802.06794 v1 pith:ZB6OACRF submitted 2018-02-19 astro-ph.EP

Jupiter Analogues Orbit Stars with an Average Metallicity Close to that of the Sun

classification astro-ph.EP
keywords jupitermetallicitystarsanaloguescooleccentricmetallicitiessolar
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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Jupiter played an important role in determining the structure and configuration of the Solar System. Whereas hot-Jupiter type exoplanets preferentially form around metal-rich stars, the conditions required for the formation of planets with masses, orbits and eccentricities comparable to Jupiter (Jupiter analogues) are unknown. Using spectroscopic metallicities, we show that stars hosting Jupiter analogues have an average metallicity close to solar, in contrast to their hot-Jupiter and eccentric cool Jupiter counterparts, which orbit stars with super-solar metallicities. Furthermore, the eccentricities of Jupiter analogues increase with host star metallicity, suggesting that planet-planet scatterings producing highly eccentric cool Jupiters could be more common in metal-rich environments. To investigate a possible explanation for these metallicity trends, we compare the observations to numerical simulations, which indicate that metal-rich stars typically form multiple Jupiters, leading to planet-planet interactions and, hence, a prevalence of either eccentric cool Jupiters or hot-Jupiters with circularized orbits. Although the samples are small and exhibit variations in their metallicities, suggesting that numerous processes other than metallicity affect the formation of planetary systems, the data in hand suggests that Jupiter analogues and terrestrial-sized planets form around stars with average metallicities close to solar, whereas high metallicity systems preferentially host eccentric cool Jupiter or hot-Jupiters, indicating higher metallicity systems may not be favorable for the formation of planetary systems akin to the Solar System.

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  1. The majority of hot Jupiters formed beyond the water ice line

    astro-ph.EP 2026-07 conditional novelty 6.0

    At least six of nine hot Jupiters are consistent with forming beyond the water ice line, implying inward migration with dynamical scattering for many of them.