Multi-Wavelength Dust Characterization of the HL Tau Disk and Implications for Planet Formation

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Main Authors: Ueda, Takahiro, Andrews, Sean M., Carrasco-González, Carlos, Guerra-Alvarado, Osmar M., Okuzumi, Satoshi, Tazaki, Ryo, Kataoka, Akimasa
Format: Preprint
Published: 2025
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author Ueda, Takahiro
Andrews, Sean M.
Carrasco-González, Carlos
Guerra-Alvarado, Osmar M.
Okuzumi, Satoshi
Tazaki, Ryo
Kataoka, Akimasa
author_facet Ueda, Takahiro
Andrews, Sean M.
Carrasco-González, Carlos
Guerra-Alvarado, Osmar M.
Okuzumi, Satoshi
Tazaki, Ryo
Kataoka, Akimasa
contents We present a comprehensive analysis of the HL Tau dust disk by modeling its intensity profiles across six wavelengths (0.45 to 7.9 mm) with a resolution of 0.05 arcsec ($\sim7$ au). Using a Markov Chain Monte Carlo (MCMC) approach, we constrain key dust properties including temperature, surface density, maximum grain size, composition, filling factor, and size distribution. The full fitting, with all parameters free, shows a preference for organics-rich dust with a low filling factor in the outer region ($r \gtrsim 40$ au), where the spectral index is $\sim3.7$, but amorphous-carbon-rich dust also reasonably reproduces the observed intensity profiles. Considering the scattering polarization observed at 0.87 mm, compact, amorphous-carbon-rich dust is unlikely, and moderately porous dust is favored. Beyond 40 au, the maximum dust size is likely $\sim100~{\rm μm}$ if dust is compact or amorphous-carbon rich. However, if the dust is moderately porous and organics-rich, both the predicted dust surface density and dust size can be sufficiently large for the pebble accretion rate to reach $\sim10M_{\oplus}~{\rm Myr^{-1}}$ in most regions, suggesting that pebble accretion could be a key mechanism for forming planets in the disk. In contrast, if the dust is amorphous-carbon-rich, forming a giant planet core via pebble accretion is unlikely due to the combined effects of low dust surface density and small dust size required to match the observed emission, suggesting other mechanisms, such as disk fragmentation due to gravitational instability, may be responsible for planet formation in the HL Tau disk.
format Preprint
id arxiv_https___arxiv_org_abs_2507_14443
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Multi-Wavelength Dust Characterization of the HL Tau Disk and Implications for Planet Formation
Ueda, Takahiro
Andrews, Sean M.
Carrasco-González, Carlos
Guerra-Alvarado, Osmar M.
Okuzumi, Satoshi
Tazaki, Ryo
Kataoka, Akimasa
Earth and Planetary Astrophysics
We present a comprehensive analysis of the HL Tau dust disk by modeling its intensity profiles across six wavelengths (0.45 to 7.9 mm) with a resolution of 0.05 arcsec ($\sim7$ au). Using a Markov Chain Monte Carlo (MCMC) approach, we constrain key dust properties including temperature, surface density, maximum grain size, composition, filling factor, and size distribution. The full fitting, with all parameters free, shows a preference for organics-rich dust with a low filling factor in the outer region ($r \gtrsim 40$ au), where the spectral index is $\sim3.7$, but amorphous-carbon-rich dust also reasonably reproduces the observed intensity profiles. Considering the scattering polarization observed at 0.87 mm, compact, amorphous-carbon-rich dust is unlikely, and moderately porous dust is favored. Beyond 40 au, the maximum dust size is likely $\sim100~{\rm μm}$ if dust is compact or amorphous-carbon rich. However, if the dust is moderately porous and organics-rich, both the predicted dust surface density and dust size can be sufficiently large for the pebble accretion rate to reach $\sim10M_{\oplus}~{\rm Myr^{-1}}$ in most regions, suggesting that pebble accretion could be a key mechanism for forming planets in the disk. In contrast, if the dust is amorphous-carbon-rich, forming a giant planet core via pebble accretion is unlikely due to the combined effects of low dust surface density and small dust size required to match the observed emission, suggesting other mechanisms, such as disk fragmentation due to gravitational instability, may be responsible for planet formation in the HL Tau disk.
title Multi-Wavelength Dust Characterization of the HL Tau Disk and Implications for Planet Formation
topic Earth and Planetary Astrophysics
url https://arxiv.org/abs/2507.14443