Electrical and Thermal Conductivity of Earth's Iron-enriched Basal Magma Ocean

Fuente: arXiv
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Autores principales: Dragulet, Francis, Stixrude, Lars
Formato: Preprint
Publicado: 2025
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author Dragulet, Francis
Stixrude, Lars
author_facet Dragulet, Francis
Stixrude, Lars
contents The Earth's earliest magnetic field may have originated in a basal magma ocean, a layer of silicate melt surround the core that could have persisted for billions of years. Recent studies show that the electrical conductivity of liquid with a bulk silicate Earth composition exceeds 10000 S/m at basal magma ocean conditions, potentially surprising the threshold for dynamo activity. Over most of its history however, the basal magma ocean is more enriched in iron than the bulk silicate Earth, due to iron's incompatibility in the mineral assemblages of the lower mantle. Using ab-initio molecular dynamics calculations, we examine how iron content affects the silicate dynamo hypothesis. We investigate how the electrical conductivity of silicate liquid changes with iron enrichment, at pressures and temperatures relevant for Earth's basal magma ocean. We also compute the electronic contribution to the thermal conductivity , to evaluate convective instability of basal magma oceans. Finally, we apply our results to model the thermal and magnetic evolution of Earth's basal magma ocean over time.
format Preprint
id arxiv_https___arxiv_org_abs_2508_00791
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Electrical and Thermal Conductivity of Earth's Iron-enriched Basal Magma Ocean
Dragulet, Francis
Stixrude, Lars
Earth and Planetary Astrophysics
Materials Science
Geophysics
The Earth's earliest magnetic field may have originated in a basal magma ocean, a layer of silicate melt surround the core that could have persisted for billions of years. Recent studies show that the electrical conductivity of liquid with a bulk silicate Earth composition exceeds 10000 S/m at basal magma ocean conditions, potentially surprising the threshold for dynamo activity. Over most of its history however, the basal magma ocean is more enriched in iron than the bulk silicate Earth, due to iron's incompatibility in the mineral assemblages of the lower mantle. Using ab-initio molecular dynamics calculations, we examine how iron content affects the silicate dynamo hypothesis. We investigate how the electrical conductivity of silicate liquid changes with iron enrichment, at pressures and temperatures relevant for Earth's basal magma ocean. We also compute the electronic contribution to the thermal conductivity , to evaluate convective instability of basal magma oceans. Finally, we apply our results to model the thermal and magnetic evolution of Earth's basal magma ocean over time.
title Electrical and Thermal Conductivity of Earth's Iron-enriched Basal Magma Ocean
topic Earth and Planetary Astrophysics
Materials Science
Geophysics
url https://arxiv.org/abs/2508.00791