Projects per year
Abstract
Ureilite meteorites are arguably our only large suite of samples from the mantle of a dwarf planet and typically contain greater abundances of diamond than any known rock. Some also contain lonsdaleite, which may be harder than diamond. Here, we use electron microscopy to map the relative distribution of coexisting lonsdaleite, diamond, and graphite in ureilites. These maps show that lonsdaleite tends to occur as polycrystalline grains, sometimes with distinctive fold morphologies, partially replaced by diamond + graphite in rims and cross-cutting veins. These observations provide strong evidence for how the carbon phases formed in ureilites, which, despite much conjecture and seemingly conflicting observations, has not been resolved. We suggest that lonsdaleite formed by pseudomorphic replacement of primary graphite shapes, facilitated by a supercritical C-H-O-S fluid during rapid decompression and cooling. Diamond + graphite formed after lonsdaleite via ongoing reaction with C-H-O-S gas. This graphite > lonsdaleite > diamond + graphite formation process is akin to industrial chemical vapor deposition but operates at higher pressure (∼1-100 bar) and provides a pathway toward manufacture of shaped lonsdaleite for industrial application. It also provides a unique model for ureilites that can reconcile all conflicting observations relating to diamond formation.
| Original language | English |
|---|---|
| Article number | e2208814119 |
| Number of pages | 8 |
| Journal | Proceedings of the National Academy of Sciences of the United States of America |
| Volume | 119 |
| Issue number | 38 |
| DOIs | |
| Publication status | Published - 20 Sept 2022 |
Keywords
- chemical vapor deposition
- diamond
- lonsdaleite
- meteorite
- ureilite
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Enabling future technology by building light element analysis capability; a light element optimised ultra-high resolution electron microprobe
Tomkins, A. (Primary Chief Investigator (PCI)), Bhargava, S. (Chief Investigator (CI)), Boger, S. (Chief Investigator (CI)), Brooks, G. A. (Chief Investigator (CI)), Hutchinson, C. (Chief Investigator (CI)), Tardio, J. (Chief Investigator (CI)), Weinberg, R. (Chief Investigator (CI)), Wen, C. (Chief Investigator (CI)), MacRae, C. (Partner Investigator (PI)), Pownceby, M. I. (Partner Investigator (PI)) & Wilson, N. (Partner Investigator (PI))
ARC - Australian Research Council, Monash University, RMIT University, Swinburne University of Technology, CSIRO - Commonwealth Scientific and Industrial Research Organisation, University of Melbourne
Project: Research
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Evolution of sub-arc mantle oxidation state over Earth’s history
Tomkins, A. (Primary Chief Investigator (PCI))
ARC - Australian Research Council
1/01/19 → 5/12/23
Project: Research