Transformation of shock-compressed graphite to hexagonal diamond in nanoseconds.
basic_science · Level V
Where this comes from
- Record sourced from PubMed, PMID 29098183.
- Also identified by DOI 10.1126/sciadv.aao3561 and PMC identifier 5659656.
- Licence recorded as CC BY-NC.
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Abstract
The graphite-to-diamond transformation under shock compression has been of broad scientific interest since 1961. The formation of hexagonal diamond (HD) is of particular interest because it is expected to be harder than cubic diamond and due to its use in terrestrial sciences as a marker at meteorite impact sites. However, the formation of diamond having a fully hexagonal structure continues to be questioned and remains unresolved. Using real-time (nanosecond), in situ x-ray diffraction measurements, we show unequivocally that highly oriented pyrolytic graphite, shock-compressed along the <i>c</i> axis to 50 GPa, transforms to highly oriented elastically strained HD with the (100)<sub>HD</sub> plane parallel to the graphite basal plane. These findings contradict recent molecular dynamics simulation results for the shock-induced graphite-to-diamond transformation and provide a benchmark for future theoretical simulations. Additionally, our results show that an earlier report of HD forming only above 170 GPa for shocked pyrolytic graphite may lead to incorrect interpretations of meteorite impact events.