Giant planet and brown dwarf formation
arXiv:1401.7559 · doi:10.2458/azu_uapress_9780816531240-ch027
Abstract
Understanding the dominant brown dwarf and giant planet formation processes, and finding out whether these processes rely on completely different mechanisms or share common channels represents one of the major challenges of astronomy and remains the subject of heated debates. It is the aim of this review to summarize the latest developments in this field and to address the issue of origin by confronting different brown dwarf and giant planet formation scenarios to presently available observational constraints. As examined in the review, if objects are classified as "Brown Dwarfs" or "Giant Planets" on the basis of their formation mechanism, it has now become clear that their mass domains overlap and that there is no mass limit between these two distinct populations. Furthermore, while there is increasing observational evidence for the existence of non-deuterium burning brown dwarfs, some giant planets, characterized by a significantly metal enriched composition, might be massive enough to ignite deuterium burning in their core. Deuterium burning (or lack of) thus plays no role in either brown dwarf or giant planet formation. Consequently, we argue that the IAU definition to distinguish these two populations has no physical justification and brings scientific confusion. In contrast, brown dwarfs and giant planets might bear some imprints of their formation mechanism, notably in their mean density and in the physical properties of their atmosphere. Future direct imaging surveys will undoubtedly provide crucial information and perhaps provide some clear observational diagnostics to unambiguously distinguish these different astrophysical objects.
24 pages, 2 figures. Accepted for publication as a chapter in Protostars and Planets VI, University of Arizona Press (2014), eds. H. Beuther, R. S. Klessen, C. P. Dullemond, Th. Henning
Cited by in corpus (20)
- A Giant Planet Candidate Transiting a White Dwarf
- Instrumentation for the detection and characterization of exoplanets
- Atmospheres of Brown Dwarfs
- Heavy metal rules. I. Exoplanet incidence and metallicity
- Orbital misalignment of the super-Earth Men c with the spin of its star
- Dynamical Mass of the Young Substellar Companion HD 984 B
- Considerations for Atmospheric Retrieval of High-Precision Brown Dwarf Spectra
- The origin of free-floating planets
- An eccentric Brown Dwarf eclipsing an M dwarf
- Efficiently Imaging Accreting Protoplanets from Space: Reference Star Differential Imaging of the PDS 70 Planetary System using the HST/WFC3 Archival PSF Library
- Mutual inclinations between giant planets and their debris discs in HD 113337 and HD 38529
- Search for Brown Dwarfs in IC 1396 with Subaru HSC: Interpreting the Impact of Environmental Factors on Sub-stellar Population
- Probing the Milky Way stellar and brown dwarf initial mass function with modern microlensing observations
- MANGOS II: Five new giant planets orbiting low-mass stars
- Forming short period sub-stellar companions in 47 Tuc: I. Dynamical model and brown dwarf tidal capture rates
- Early evidence for isotropic planetary obliquities in young super-Jupiter systems
- ASTEP confirmation of a pair of long-period Jupiter-sized planets with extremely low densities transiting TOI-791
- A universal brown dwarf desert formed between planets and stars
- Discovery of a young low-mass brown dwarf transiting a fast-rotating F-type star by the Galactic Plane eXoplanet (GPX) survey
- TOI-7154b: A Close-in Massive Brown Dwarf in an Eccentric Orbit