Unraveling the Brown Dwarf Desert: Four New Discoveries and a Unifying, Period-Coded Picture

Fuente: arXiv
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Hauptverfasser: Šubjak, Ján, Brahm, Rafael, Lipták, Jozef, Eberhardt, Jan, Pinto, Marcelo Tala, Casewell, Sarah L., Henning, Thomas, Hesse, Katharine, Trifonov, Trifon, Jordán, Andrés, Rojas, Felipe I., Vítková, Michaela, Salinas, Helem, Boyle, Gavin, Suc, Vincent, Antonucci, Luca, Bernacki, Krzysztof, Briceño, César, Collins, Karen A., Fernández, Jorge Fernández, Gill, Samuel, Janík, Jan, Law, Nicholas, Mann, Andrew W., McCormac, James, Popowicz, Adam, Sebastian, Daniel, Skarka, Marek, Václavík, Ján, Vanzi, Leonardo, West, Richard G., Wilkin, Francis P., Ziegler, Carl
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Veröffentlicht: 2026
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author Šubjak, Ján
Brahm, Rafael
Lipták, Jozef
Eberhardt, Jan
Pinto, Marcelo Tala
Casewell, Sarah L.
Henning, Thomas
Hesse, Katharine
Trifonov, Trifon
Jordán, Andrés
Rojas, Felipe I.
Vítková, Michaela
Salinas, Helem
Boyle, Gavin
Suc, Vincent
Antonucci, Luca
Bernacki, Krzysztof
Briceño, César
Collins, Karen A.
Fernández, Jorge Fernández
Gill, Samuel
Janík, Jan
Law, Nicholas
Mann, Andrew W.
McCormac, James
Popowicz, Adam
Sebastian, Daniel
Skarka, Marek
Václavík, Ján
Vanzi, Leonardo
West, Richard G.
Wilkin, Francis P.
Ziegler, Carl
author_facet Šubjak, Ján
Brahm, Rafael
Lipták, Jozef
Eberhardt, Jan
Pinto, Marcelo Tala
Casewell, Sarah L.
Henning, Thomas
Hesse, Katharine
Trifonov, Trifon
Jordán, Andrés
Rojas, Felipe I.
Vítková, Michaela
Salinas, Helem
Boyle, Gavin
Suc, Vincent
Antonucci, Luca
Bernacki, Krzysztof
Briceño, César
Collins, Karen A.
Fernández, Jorge Fernández
Gill, Samuel
Janík, Jan
Law, Nicholas
Mann, Andrew W.
McCormac, James
Popowicz, Adam
Sebastian, Daniel
Skarka, Marek
Václavík, Ján
Vanzi, Leonardo
West, Richard G.
Wilkin, Francis P.
Ziegler, Carl
contents We present four newly validated transiting brown dwarfs identified through TESS photometry and confirmed with high-precision radial velocity measurements obtained from the FEROS and PLATOSpec spectrographs. Notably, three of these companions exhibit orbital periods exceeding 100 days, thereby expanding the sample of long-period transiting brown dwarfs from two to five systems. The host stars of long-period brown dwarfs show mild subsolar metallicity. These discoveries highlight the expansion of the metal-poor, long-period distribution and help us better understand the brown dwarf desert. In our comparative analysis of eccentricity and metallicity demographics, we utilize catalogues of long-period giant planets, brown dwarfs, and low-mass stellar companions. After accounting for tidal influences, the eccentricity distribution aligns with that of low-mass stellar binaries, presenting a different profile than that observed within the giant planet population. Additionally, the metallicity of the host stars reveals a noteworthy trend: short-period transiting brown dwarfs are predominantly associated with metal-rich stars, whereas long-period brown dwarfs are more often found around metal-poor stars, demonstrating statistical similarities to low-mass stellar hosts. This trend has also been previously observed in studies of hot and cold Jupiters and points to a period-coded mixture of channels. A natural explanation is that most brown dwarfs originate from fragmentation at wider separations, with long-period systems retaining this stellar-like imprint, while only those embedded in massive, long-lived, metal-rich protoplanetary discs are efficiently delivered and stabilised to short orbits.
format Preprint
id arxiv_https___arxiv_org_abs_2602_02836
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Unraveling the Brown Dwarf Desert: Four New Discoveries and a Unifying, Period-Coded Picture
Šubjak, Ján
Brahm, Rafael
Lipták, Jozef
Eberhardt, Jan
Pinto, Marcelo Tala
Casewell, Sarah L.
Henning, Thomas
Hesse, Katharine
Trifonov, Trifon
Jordán, Andrés
Rojas, Felipe I.
Vítková, Michaela
Salinas, Helem
Boyle, Gavin
Suc, Vincent
Antonucci, Luca
Bernacki, Krzysztof
Briceño, César
Collins, Karen A.
Fernández, Jorge Fernández
Gill, Samuel
Janík, Jan
Law, Nicholas
Mann, Andrew W.
McCormac, James
Popowicz, Adam
Sebastian, Daniel
Skarka, Marek
Václavík, Ján
Vanzi, Leonardo
West, Richard G.
Wilkin, Francis P.
Ziegler, Carl
Earth and Planetary Astrophysics
Solar and Stellar Astrophysics
We present four newly validated transiting brown dwarfs identified through TESS photometry and confirmed with high-precision radial velocity measurements obtained from the FEROS and PLATOSpec spectrographs. Notably, three of these companions exhibit orbital periods exceeding 100 days, thereby expanding the sample of long-period transiting brown dwarfs from two to five systems. The host stars of long-period brown dwarfs show mild subsolar metallicity. These discoveries highlight the expansion of the metal-poor, long-period distribution and help us better understand the brown dwarf desert. In our comparative analysis of eccentricity and metallicity demographics, we utilize catalogues of long-period giant planets, brown dwarfs, and low-mass stellar companions. After accounting for tidal influences, the eccentricity distribution aligns with that of low-mass stellar binaries, presenting a different profile than that observed within the giant planet population. Additionally, the metallicity of the host stars reveals a noteworthy trend: short-period transiting brown dwarfs are predominantly associated with metal-rich stars, whereas long-period brown dwarfs are more often found around metal-poor stars, demonstrating statistical similarities to low-mass stellar hosts. This trend has also been previously observed in studies of hot and cold Jupiters and points to a period-coded mixture of channels. A natural explanation is that most brown dwarfs originate from fragmentation at wider separations, with long-period systems retaining this stellar-like imprint, while only those embedded in massive, long-lived, metal-rich protoplanetary discs are efficiently delivered and stabilised to short orbits.
title Unraveling the Brown Dwarf Desert: Four New Discoveries and a Unifying, Period-Coded Picture
topic Earth and Planetary Astrophysics
Solar and Stellar Astrophysics
url https://arxiv.org/abs/2602.02836