Detection of primary paleomagnetic remanence carriers in zircon crystals using high-resolution X-ray ptycho-tomography

Author:

Kupp Venkata Sree Charan1,Ball Matthew2,Batey Darren3,Dodds Kathryn2,Cipiccia Silvia4,Wanelik Kaz5,Fu Roger6,Rau Christoph3,Harrison Richard2

Affiliation:

1. Canadian Light Source

2. University of Cambridge

3. Diamond Light Source

4. Diamond Light Source, Didcot

5. Diamond Light Source Ltd.

6. Harvard University

Abstract

Abstract We present the first application of X-ray ptycho-tomography to perform high-resolution, non-destructive, three-dimensional (3D) imaging of magnetic inclusions in paleomagnetically relevant materials (zircon crystals from the Bishop Tuff ignimbrite). Correlative microscopy using quantum diamond magnetic microscopy combined with X-ray fluorescence mapping was used to locate regions containing Fe-bearing magnetic remanence carriers. Ptycho-tomographic reconstructions with voxel sizes 85 nm and 21 nm were achievable across a field-of-view > 80 µm; voxel sizes as small as 5 nm were achievable over a limited field-of-view using local ptycho-tomography. Magnetite particles 300 nm in size were clearly resolved. We estimate that particles as small as 100 nm – approaching single-domain threshold for magnetite – could be resolvable using this “dual-mode” methodology. Our combined magnetic and tomography results support the presence of primary magnetic inclusions in relatively young and pristine zircon crystals, majority of which are in the optimal size range for carrying strong and stable paleomagnetic signals.

Publisher

Research Square Platform LLC

Reference74 articles.

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3. Does size matter? Statistical limits of paleomagnetic field reconstruction from small rock specimens;Berndt T;Journal of Geophysical Research: Solid Earth,2016

4. Biggin, A.J., Steinberger, B., Aubert, J., Suttie, N., Holme, R., Torsvik, T.H., van der Meer, D.G., and van Hinsbergen, D.J.J. (2012) Possible links between long-term geomagnetic variations and whole-mantle convection processes. Nature Geoscience, 5, 526–533.

5. Blukis, R., Pfau, B., Günther, C.M., Hessing, P., Eisebitt, S., Einsle, J., and Harrison, R.J. (2020) Nanoscale Imaging of High-Field Magnetic Hysteresis in Meteoritic Metal Using X-Ray Holography. Geochemistry, Geophysics, Geosystems, 21, e2020GC009044.

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