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May 3, 2026Monthly Notices of the Royal Astronomical Society1 citationsOpen Access

Astrochemical Inheritance of Terrestrial Planets Water from Local Wet Silicates

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LBLise Boitard–CrépeauSPStefano PantaleoneCCCecilia Ceccarelli

Key Points

  • This research aims to explore the sources of water in terrestrial planets, particularly focusing on local contributions from silicate grains.
  • Utilized quantum mechanics calculations to determine the binding energy of water on silicate grains.
  • Conducted kinetic analyses to evaluate temperature effects on water retention.
  • Compared findings to traditional models of water delivery in the Solar System.
  • Binding energy of water on silicate grains is approximately twice that on amorphous ice.
  • Local sources are sufficient to explain the water content in terrestrial planets without needing contributions from the outer Solar System.
  • Model predictions align well with existing water content estimates for rocky inner planets.

Abstract

Abstract The delivery of water to the inner Solar System rocky planets, including Earth, remains debated, as standard models assume that they formed from dry grains, inside the snowline of the protosolar nebula. However, a recent work showed that a not-negligible amount of water formed during the prestellar phase could have been retained by pebbles and planetesimals at the Earth’s orbit in enough quantities to reproduce its water content. This study was based based on quantum mechanics (QM) calculations of the binding energy (BE) of water on amorphous ice and on a kinetic approach. Here, we present new QM calculations of the BE of water frozen on the surface of silicate grains, and show that it is on average about twice larger than that on the amorphous ice. The contribution of this first layer of frozen water increases the dust temperature at which frozen water can be retained. This provides a local source of water not only for the Earth, but also for the inner rocky planets. The predictions from our model are in agreement with the available estimates of water content in terrestrial planets. This suggests that water delivery from the outer Solar System may not be required.

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Cite This Study

Boitard–Crépeau et al. (2026) studied this question.

synapsesocial.com/papers/69f6e6478071d4f1bdfc6f67https://doi.org/10.1093/mnras/stag789
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