Devolatilization of extrasolar planetesimals by 60Fe and 26Al heating

Author:

Eatson Joseph W1ORCID,Lichtenberg Tim2ORCID,Parker Richard J1ORCID,Gerya Taras V3ORCID

Affiliation:

1. Department of Physics and Astronomy, The University of Sheffield , Hicks Building, Hounsfield Road, Sheffield, S3 7RH , UK

2. Kapteyn Astronomical Institute, University of Groningen , P.O. Box 800, NL-9700 AV Groningen , The Netherlands

3. Institute of Geophysics, Department of Earth Sciences , ETH Zurich, Sonneggstrasse 5, CH-8092 Zurich , Switzerland

Abstract

ABSTRACT Whilst the formation of Solar system planets is constrained by meteoritic evidence, the geophysical history of low-mass exoplanets is much less clear. The bulk composition and climate states of rocky exoplanets may vary significantly based on the composition and properties of the planetesimals they form. An important factor influenced by planetesimal composition is water content, where the desiccation of accreting planetesimals impacts the final water content of the resultant planets. While the inner planets of the Solar system are comparatively water-poor, recent observational evidence from exoplanet bulk densities and planetary formation models suggests that rocky exoplanets engulfed by substantial layers of high-pressure ices or massive steam atmospheres could be widespread. Here, we quantify variations in planetesimal desiccation due to potential fractionation of the two short-lived radioisotopes 26Al and 60Fe relevant for internal heating on planetary formation time-scales. We focus on how order of magnitude variations in 60Fe can affect the water content of planetesimals, and how this may alter the formation of extrasolar ocean worlds. We find that heating by 26Al is the dominant cause of planetesimal heating in any Solar system analogue scenario, thus validating previous works focussing only on this radioisotope. However, 60Fe can become the primary heating source in the case of high levels of supernova enrichment in massive star-forming regions. These diverging scenarios can affect the formation pathways, bulk volatile budget, and climate diversity of low-mass exoplanets.

Funder

Royal Society

Publisher

Oxford University Press (OUP)

Cited by 2 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Seven white dwarfs with circumstellar gas discs II: tracing the composition of exoplanetary building blocks;Monthly Notices of the Royal Astronomical Society;2024-06-22

2. Super-Earths and Earth-like exoplanets;Reference Module in Earth Systems and Environmental Sciences;2024

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