1B. J. K. Wilson, 2G. A. Arcuri, 2T. Casagrande, 2C. M. Andrei, 2,3B. Langelier, 2,4,5K. T. Tait, 1M. G. Daly
Geochimica et Cosmochimica Acta (in Press)
Link to Article [DOI: 10.1016/j.gca.2026.09.024]
1Centre for Research in Earth and Space Science, Lassonde School of Engineering, York University, Toronto, Ontario, Canada
2Canadian Centre for Electron Microscopy, McMaster University, Hamilton, Ontario, Canada
3Department of Materials Science and Engineering, McMaster University, Hamilton, Ontario, Canada
4School of Earth, Environment, and Society, McMaster University, Hamilton, Ontario, Canada
5Department of Natural History, Center for Applied Planetary Mineralogy, Royal Ontario Museum, Toronto, Ontario, Canada
Copyright Elsevier
Tarda is a C2-ungrouped carbonaceous chondrite that preserves a record of low-temperature
aqueous alteration on its parent asteroid. While the original fluid has disappeared, constraining its
composition is essential for understanding the chemical environment that influenced both
secondary mineral formation and prebiotic organic chemistry. Magnetite framboids are an
abundant aqueous alteration product in Tarda and likely recorded some of the chemical species
from its mother solution, entrained within the framboidal magnetite grain boundaries. To
investigate this, we conducted a nanoscale study on five magnetite framboids using transmission
electron microscopy, energy dispersive x-ray spectroscopy, and atom probe tomography.
Magnetite framboids in Tarda exhibit a wide range of textures, crystallite sizes, and packing
arrangements, reflecting a progressive sequence of discrete nucleation and growth events likely
occurring in isolated water droplets. Energy dispersive x-ray spectroscopy analysis of four
interacting framboids reveals trace element enrichments of mostly Ti and Si along ~5 nm thick
grain boundaries, with the strongest enrichments observed in the framboids with smaller
crystallites, which likely precipitated at the beginning and end of the local precipitation sequence.
Using atom probe tomography, we captured a ~5 nm thick planar feature enriched in trace
abundances of Na, Mg, Ca, Mn, and Si, likely corresponding to a magnetite boundary. These
findings suggest that magnetite framboids in Tarda formed from a generally alkaline fluid that
contained a diverse suite of cations and evolved as water-rock interaction progressed. While the
fluid composition inferred here resembles alkaline, metal-containing fluids known to promote
organic synthesis on Earth, experimental work is needed to determine how such conditions could
influence complex organic synthesis in asteroid environments