Nanomagnetic properties of the meteorite cloudy zone

Наномагнитные свойства «облачной зоны» метеорита
Sean M. Collins, Paul A. Midgley, R. J. Harrison, Alexander S. Eggeman, Ben Martineau, Paul A.J. Bagot, Zineb Saghi, Joshua F. Einsle, Roberts Blukis
2018-11-16

atom probe tomographycloudy zonemicromagnetic simulationspaleomagnetic remanencetetrataenite
Meteorites contain a record of their thermal and magnetic history, written in the intergrowths of iron-rich and nickel-rich phases that formed during slow cooling. Of intense interest from a magnetic perspective is the "cloudy zone," a nanoscale intergrowth containing tetrataenite-a naturally occurring hard ferromagnetic mineral that has potential applications as a sustainable alternative to rare-earth permanent magnets. Here we use a combination of high-resolution electron diffraction, electron tomography, atom probe tomography (APT), and micromagnetic simulations to reveal the 3D architecture of the cloudy zone with subnanometer spatial resolution and model the mechanism of remanence acquisition during slow cooling on the meteorite parent body. Isolated islands of tetrataenite are embedded in a matrix of an ordered superstructure. The islands are arranged in clusters of three crystallographic variants, which control how magnetic information is encoded into the nanostructure. The cloudy zone acquires paleomagnetic remanence via a sequence of magnetic domain state transformations (vortex to two domain to single domain), driven by Fe-Ni ordering at 320 °C. Rather than remanence being recorded at different times at different positions throughout the cloudy zone, each subregion of the cloudy zone records a coherent snapshot of the magnetic field that was present at 320 °C. Only the coarse and intermediate regions of the cloudy zone are found to be suitable for paleomagnetic applications. The fine regions, on the other hand, have properties similar to those of rare-earth permanent magnets, providing potential routes to synthetic tetrataenite-based magnetic materials.
1
Each subregion of the cloudy zone records a coherent snapshot of the magnetic field present at 320 °C rather than recording at different times across the zone.
2
Only the coarse and intermediate regions of the cloudy zone are suitable for paleomagnetic applications; fine regions have properties similar to rare-earth permanent magnets, suggesting routes to synthetic tetrataenite-based magnets.
3
Paleomagnetic remanence is acquired via domain state transformations (vortex → two-domain → single-domain) driven by Fe–Ni ordering at 320 °C.
4
Tetrataenite islands are arranged in clusters of three crystallographic variants that control magnetic information encoding into the nanostructure.
5
The cloudy zone is a nanoscale intergrowth containing isolated tetrataenite islands embedded in an ordered superstructure.

Cloudy zone in meteorites (nanoscale Fe–Ni intergrowth containing tetrataenite)

Nanomagnetic architecture and remanence acquisition mechanisms of the cloudy zone, including 3D tetrataenite island arrangement, domain-state transformations during Fe–Ni ordering at 320 °C, and suitability of fine/coarse regions for paleomagnetic or permanent-magnet applications

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2018-11-16
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Sean M. Collins
Paul A. Midgley
R. J. Harrison
Alexander S. Eggeman
Ben Martineau
Paul A.J. Bagot
Zineb Saghi
Joshua F. Einsle
Roberts Blukis
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