A universal brown dwarf desert formed between planets and stars
成果类型:
Article
署名作者:
Cui, Kaiming; Xiao, Guang-Yao; Feng, Fabo; Liu, Beibei; Nayakshin, Sergei; Hall, Cassandra; Guo, Kangrou; Lai, Dong; Ogihara, Masahiro; Rui, Yicheng; Boss, Alan P.; Butler, R. Paul; Xuan, Yifan
署名单位:
Shanghai Jiao Tong University; University of Warwick; University of Warwick; Shanghai Jiao Tong University; Zhejiang University; Zhejiang University; University of Leicester; University System of Georgia; University of Georgia; University System of Georgia; University of Georgia; Cornell University; Carnegie Institution for Science
刊物名称:
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA
ISSN/ISSBN:
0027-8424; 1091-6490
DOI:
10.1073/pnas.2524764123
发表日期:
2026-03-03
页码:
e2524764123
关键词:
exoplanet
brown dwarf
occurrence rate
planetary formation
giant planets
BURST MODE
FRAGMENTATION
companions
validation
accretion
EVOLUTION
migration
search
摘要:
Giant planets and brown dwarfs play a crucial role in star and planet formation as they are situated at the boundary between planets and stars with uncertain formation mechanisms. Previous observational searches for the formation boundary were hampered by the lack of large unified samples of wide-orbit giant planets and substellar companions. A combined analysis of radial velocity and astrometry mitigates this problem and has significantly enlarged the sample. Here, we present a rigorous statistical analysis of the sample of 55 giant planets, brown dwarfs, and low-mass stellar companions orbiting FGK stars. We quantitatively analyze the occurrence rates of brown dwarfs and identify a distinct brown dwarf desert at approximately 30MJ, with no evidence of disappearance up to 20 au. Unlike previous studies that predicted a declining planet occurrence rate beyond the water-ice line, we identify a population of giant planets and low-mass brown dwarfs in this region. The metallicity and eccentricity trends in our sample suggest that these are the consequences of two different formation scenarios. Our combined population synthesis model successfully accounts for the observed brown dwarf desert, supporting the dual formation hypothesis.
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