How does the chemical composition of solids influence the formation of planetesimals?

Fuente: arXiv
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Main Authors: Xenos, Konstantinos Odysseas, Bitsch, Bertram, Andama, Geoffrey
Format: Preprint
Published: 2025
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author Xenos, Konstantinos Odysseas
Bitsch, Bertram
Andama, Geoffrey
author_facet Xenos, Konstantinos Odysseas
Bitsch, Bertram
Andama, Geoffrey
contents The formation of planetesimals is a necessary step in the formation of planets. While several mechanisms have been proposed, a local dust-to-gas ratio above unity is a strong requirement to trigger the collapse of pebble clouds into planetesimals. A prime location for this is the water-ice line, where large water-rich pebbles evaporate and release their smaller silicate cores. This enhances the local dust-to-gas ratio due to the different inward drift speeds of large and small pebbles. Previous work suggested that planetesimal formation becomes difficult at overall dust-to-gas ratios below 0.6\%, consistent with the occurrence of close-in super Earths. However, the influence of disc composition on planetesimal formation remains unclear. Observations of stellar abundances show both a decrease and a wide spread in C/O ratios for low-metallicity stars. Using the C/O ratio as a proxy to determine water ice abundance in discs, we use the 1D disc evolution code chemcomp to simulate protoplanetary discs with varying C/O and dust-to-gas ratios over 3 Myr. Planetesimal formation is modeled using conditions based on dust-gas dynamics and pebble fragmentation. Our results confirm that planetesimal formation strongly depends on disc metallicity, with lower metallicity discs forming significantly fewer planetesimals. A lower carbon fraction generally promotes planetesimal formation by increasing water ice, while higher carbon fractions suppress it. The opposite is seen for oxygen: higher oxygen content leads to more efficient planetesimal formation at the same dust-to-gas ratio. We thus predict that planets around low-metallicity stars should be more common when their C/O ratio is low and oxygen is enhanced, a trend that can be tested observationally. Our simulations thus open a pathway to understand if the composition of the planet forming material influences the growth of planets.
format Preprint
id arxiv_https___arxiv_org_abs_2507_12864
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle How does the chemical composition of solids influence the formation of planetesimals?
Xenos, Konstantinos Odysseas
Bitsch, Bertram
Andama, Geoffrey
Earth and Planetary Astrophysics
The formation of planetesimals is a necessary step in the formation of planets. While several mechanisms have been proposed, a local dust-to-gas ratio above unity is a strong requirement to trigger the collapse of pebble clouds into planetesimals. A prime location for this is the water-ice line, where large water-rich pebbles evaporate and release their smaller silicate cores. This enhances the local dust-to-gas ratio due to the different inward drift speeds of large and small pebbles. Previous work suggested that planetesimal formation becomes difficult at overall dust-to-gas ratios below 0.6\%, consistent with the occurrence of close-in super Earths. However, the influence of disc composition on planetesimal formation remains unclear. Observations of stellar abundances show both a decrease and a wide spread in C/O ratios for low-metallicity stars. Using the C/O ratio as a proxy to determine water ice abundance in discs, we use the 1D disc evolution code chemcomp to simulate protoplanetary discs with varying C/O and dust-to-gas ratios over 3 Myr. Planetesimal formation is modeled using conditions based on dust-gas dynamics and pebble fragmentation. Our results confirm that planetesimal formation strongly depends on disc metallicity, with lower metallicity discs forming significantly fewer planetesimals. A lower carbon fraction generally promotes planetesimal formation by increasing water ice, while higher carbon fractions suppress it. The opposite is seen for oxygen: higher oxygen content leads to more efficient planetesimal formation at the same dust-to-gas ratio. We thus predict that planets around low-metallicity stars should be more common when their C/O ratio is low and oxygen is enhanced, a trend that can be tested observationally. Our simulations thus open a pathway to understand if the composition of the planet forming material influences the growth of planets.
title How does the chemical composition of solids influence the formation of planetesimals?
topic Earth and Planetary Astrophysics
url https://arxiv.org/abs/2507.12864