Skip to main navigation Skip to search Skip to main content

Long-lived magnetism from solidification-driven convection on the pallasite parent body

  • James F.J. Bryson
  • , Claire I. O. Nichols
  • , Julia Herrero-Albillos
  • , Florian Kronast
  • , Takeshi Kasama
  • , Hossein Alimadadi
  • , Gerrit van der Laan
  • , Francis Nimmo
  • , Richard J. Harrison
    • University of Cambridge
    • Centro Universitario de la Defensa, Zaragoza
    • Helmholtz Centre Berlin for Materials and Energy
    • Diamond Light Source Ltd
    • University of California at Santa Cruz

    Research output: Contribution to journalLetterpeer-review

    Abstract

    Palaeomagnetic measurements of meteorites suggest that, shortly after the birth of the Solar System, themolten metallic cores ofmany small planetary bodies convected vigorously and were capable of generating magnetic fields. Convection on these bodies is currently thought to have been thermally driven, implying that magnetic activity would have been short-lived. Here we report a time-series palaeomagnetic record derived fromnanomagneticimaging10 of the Imilac and Esquel pallasite meteorites, a group of meteorites consisting of centimetre-sized metallic and silicate phases. We find a history of long-lived magnetic activity on the pallasite parent body, capturing the decay and eventual shutdown of the magnetic field as core solidification completed.We demonstrate that magnetic activity driven by progressive solidification of an inner core is consistent with our measuredmagnetic field characteristics and cooling rates. Solidification-driven convectionwas probably commonamong small body cores, and, in contrast to thermally driven convection, will have led to a relatively late (hundreds of millions of years after accretion), long-lasting, intense and widespread epoch of magnetic activity among these bodies in the early Solar System.
    Original languageEnglish
    JournalNature
    Volume517
    Pages (from-to)472-475
    ISSN0028-0836
    DOIs
    Publication statusPublished - 2015

    Fingerprint

    Dive into the research topics of 'Long-lived magnetism from solidification-driven convection on the pallasite parent body'. Together they form a unique fingerprint.

    Cite this