Subnanosecond phase transition dynamics in laser-shocked iron

Iron was shocked and probed at unprecedented time and strain rate to show all of its known structural types in 2.5 ns. Iron is one of the most studied chemical elements due to its sociotechnological and planetary importance; hence, understanding its structural transition dynamics is of vital interes...

Ausführliche Beschreibung

Gespeichert in:
Bibliographische Detailangaben
Veröffentlicht in:Science advances 2020-06, Vol.6 (23), p.eaaz5132-eaaz5132
Hauptverfasser: Hwang, H., Galtier, E., Cynn, H., Eom, I., Chun, S. H., Bang, Y., Hwang, G. C., Choi, J., Kim, T., Kong, M., Kwon, S., Kang, K., Lee, H. J., Park, C., Lee, J. I., Lee, Yongmoon, Yang, W., Shim, S.-H., Vogt, T., Kim, Sangsoo, Park, J., Kim, Sunam, Nam, D., Lee, J. H., Hyun, H., Kim, M., Koo, T.-Y., Kao, C.-C., Sekine, T., Lee, Yongjae
Format: Artikel
Sprache:eng
Schlagworte:
Online-Zugang:Volltext
Tags: Tag hinzufügen
Keine Tags, Fügen Sie den ersten Tag hinzu!
Beschreibung
Zusammenfassung:Iron was shocked and probed at unprecedented time and strain rate to show all of its known structural types in 2.5 ns. Iron is one of the most studied chemical elements due to its sociotechnological and planetary importance; hence, understanding its structural transition dynamics is of vital interest. By combining a short pulse optical laser and an ultrashort free electron laser pulse, we have observed the subnanosecond structural dynamics of iron from high-quality x-ray diffraction data measured at 50-ps intervals up to 2500 ps. We unequivocally identify a three-wave structure during the initial compression and a two-wave structure during the decaying shock, involving all of the known structural types of iron (α-, γ-, and ε-phase). In the final stage, negative lattice pressures are generated by the propagation of rarefaction waves, leading to the formation of expanded phases and the recovery of γ-phase. Our observations demonstrate the unique capability of measuring the atomistic evolution during the entire lattice compression and release processes at unprecedented time and strain rate.
ISSN:2375-2548
2375-2548
DOI:10.1126/sciadv.aaz5132