Article (Scientific journals)
A Model Earth-sized Planet in the Habitable Zone of α Centauri A/B
Wang, Haiyang S.; Lineweaver, Charles H.; Quanz, Sascha P. et al.
2022In Astrophysical Journal, 927, p. 134
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Keywords :
Planetary interior; Theoretical models; Extrasolar rocky planets; Atmospheric composition; Exoplanet dynamics; 1248; 2107; 511; 2120; 490; Astrophysics - Earth and Planetary Astrophysics; Astrophysics - Solar; and Stellar Astrophysics
Abstract :
[en] The bulk chemical composition and interior structure of rocky exoplanets are fundamentally important to understand their long-term evolution and potential habitability. Observations of the chemical compositions of solar system rocky bodies and of other planetary systems have increasingly shown a concordant picture that the chemical composition of rocky planets reflects that of their host stars for refractory elements, whereas this expression breaks down for volatiles. This behavior is explained by devolatilization during planetary formation and early evolution. Here we apply a devolatilization model calibrated with solar system bodies to the chemical composition of our nearest Sun-like stars-α Centauri A and B-to estimate the bulk composition of any habitable-zone rocky planet in this binary system ("α-Cen-Earth"). Through further modeling of likely planetary interiors and early atmospheres, we find that, compared to Earth, such a planet is expected to have (i) a reduced (primitive) mantle that is similarly dominated by silicates, albeit enriched in carbon-bearing species (graphite/diamond); (ii) a slightly larger iron core, with a core mass fraction of ${38.4}_{-5.1}^{+4.7}$ wt% (see Earth's 32.5 ± 0.3 wt%); (iii) an equivalent water-storage capacity; and (iv) a CO<SUB>2</SUB>-CH<SUB>4</SUB>-H<SUB>2</SUB>O-dominated early atmosphere that resembles that of Archean Earth. Further taking into account its ~25% lower intrinsic radiogenic heating from long-lived radionuclides, an ancient α-Cen-Earth (~1.5-2.5 Gyr older than Earth) is expected to have less efficient mantle convection and planetary resurfacing, with a potentially prolonged history of stagnant-lid regimes.
Disciplines :
Space science, astronomy & astrophysics
Author, co-author :
Wang, Haiyang S.;  ETH Zürich, Institute for Particle Physics and Astrophysics, Wolfgang-Pauli-Strasse 27, CH-8093 Zürich, Switzerland, National Center for Competence in Research PlanetS (www.nccr-planets.ch), Switzerland
Lineweaver, Charles H.;  Research School of Astronomy and Astrophysics, Australian National University, Canberra, ACT 2611, Australia, Research School of Earth Sciences, Australian National University, Canberra, ACT 2601, Australia
Quanz, Sascha P.;  ETH Zürich, Institute for Particle Physics and Astrophysics, Wolfgang-Pauli-Strasse 27, CH-8093 Zürich, Switzerland, National Center for Competence in Research PlanetS (www.nccr-planets.ch), Switzerland
Mojzsis, Stephen J.;  Origins Research Institute, Research Centre for Astronomy and Earth Sciences, Konkoly Thege Miklós út 15-17, H- 1121 Budapest, Hungary, Department of Lithospheric Research, University of Vienna, UZA 2, Althanstraße 14, A-1090 Vienna, Austria, Department of Geological Sciences, University of Colorado, 2200 Colorado Avenue, Boulder, CO 80309-0399, USA
Ireland, Trevor R.;  Research School of Earth Sciences, Australian National University, Canberra, ACT 2601, Australia, School of Earth and Environmental Sciences, University of Queensland, St Lucia QLD 4072, Australia
Sossi, Paolo A.;  ETH Zürich, Institute of Geochemistry and Petrology, Sonneggstrasse 5, CH-8092 Zürich, Switzerland
Seidler, Fabian;  ETH Zürich, Institute for Particle Physics and Astrophysics, Wolfgang-Pauli-Strasse 27, CH-8093 Zürich, Switzerland
Morel, Thierry  ;  Université de Liège - ULiège > Unités de recherche interfacultaires > Space sciences, Technologies and Astrophysics Research (STAR)
Language :
English
Title :
A Model Earth-sized Planet in the Habitable Zone of α Centauri A/B
Publication date :
01 March 2022
Journal title :
Astrophysical Journal
ISSN :
0004-637X
eISSN :
1538-4357
Publisher :
IOP Publishing, Bristol, Gb
Volume :
927
Pages :
134
Peer reviewed :
Peer Reviewed verified by ORBi
Available on ORBi :
since 21 March 2022

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