High-Eccentricity Migration with Disk-Induced Spin-Orbit Misalignment: a Preference for Perpendicular Hot Jupiters
arXiv:2211.09122 · doi:10.3847/2041-8213/acaea6
Abstract
High-eccentricity migration is a likely formation mechanism for many observed hot Jupiters, particularly those with a large misalignment between the stellar spin axis and orbital angular momentum axis of the planet. In one version of high-eccentricity migration, an inclined stellar companion excites von Zeipel-Lidov-Kozai (ZLK) eccentricity oscillations of a cold Jupiter, and tidal dissipation causes the planet's orbit to shrink and circularize. Throughout this process, the stellar spin can evolve chaotically, resulting in highly misaligned hot Jupiters. Previous population studies of this migration mechanism have assumed that the stellar spin is aligned with the planetary orbital angular momentum when the companion begins to induce ZLK oscillations. However, in the presence of a binary companion, the star's obliquity may be significantly excited during the dissipation of its protoplanetary disk. We calculate the stellar obliquities produced in the protoplanetary disk phase and use these to perform an updated population synthesis of ZLK-driven high-eccentricity migration. We find that the resulting obliquity distribution of HJ systems is predominantly retrograde with a broad peak near 90. The distribution we obtain has intriguing similarities to the recently-observed preponderance of perpendicular planets close to their host stars.
12 pages, 5 figures
References in corpus (15)
- Misaligned spin-orbit in the XO-3 planetary system?
- Suppression of extreme orbital evolution in triple systems with short range forces
- Hot Jupiters from Coplanar High-eccentricity Migration
- Stellar obliquities in exoplanetary systems
- Friends of Hot Jupiters. IV. Stellar companions beyond 50 AU might facilitate giant planet formation, but most are unlikely to cause Kozai-Lidov migration
- A Preponderance of Perpendicular Planets
- Chaotic Dynamics of Stellar Spin in Binaries and the Production of Misaligned Hot Jupiters
- Chaotic Tides in Migrating Gas Giants: Forming Hot and Transient Warm Jupiters via High-Eccentricity Migration
- Origins of Hot Jupiters from the Stellar Obliquity Distribution
- Early Excitation of Spin-Orbit Misalignments in Close-in Planetary Systems
- Chaotic Dynamics of Stellar Spin Driven by Planets Undergoing Lidov-Kozai Oscillations: Resonances and Origin of Chaos
- Orbital Architectures of Planet-Hosting Binaries II. Low Mutual Inclinations Between Planetary and Stellar Orbits
- Dynamics of Stellar Spin Driven by Planets Undergoing Lidov-Kozai Migration: Paths to Spin-Orbit Misalignment
- Hot Jupiter and ultra-cold Saturn formation in dense star clusters
- Tidal evolution and diffusive growth during high-eccentricity planet migration: revisiting the eccentricity distribution of hot Jupiters
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- Can tidal evolution lead to close-in planetary bodies around white dwarfs I: Orbital period distribution
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- Planet Hunters TESS V: a planetary system around a binary star, including a mini-Neptune in the habitable zone
- Can tidal evolution lead to close-in planetary bodies around white dwarfs II: volcanism and transits
- Stellar Obliquity Excitation via Disk Dispersal-Driven Resonances in Binaries
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