4.6 Article

Observation of Fundamental Mechanisms in Compression-Induced Phase Transformations Using Ultrafast X-ray Diffraction

期刊

JOM
卷 73, 期 7, 页码 2185-2193

出版社

SPRINGER
DOI: 10.1007/s11837-020-04535-4

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资金

  1. US Department of Energy, National Nuclear Security Administration [DE-AC52-07NA27344]
  2. LLNL LDRD program [16-ERD-037]
  3. EPSRC
  4. ERC
  5. Army Research Office [56122-CH-H, 71650-CH W911NF-19-2-0172]
  6. Carnegie Institution of Washington
  7. NSF
  8. National Science Foundation-Earth Sciences [EAR-1634415]
  9. Department of Energy-GeoSciences [DEFG02-94ER14466]
  10. NSF Geophysics [EAR0738873]
  11. Los Alamos National Laboratory (LANL) Reines LDRD
  12. FES, DOE ECA

向作者/读者索取更多资源

In Zr, a dynamically stabilized body-centered cubic (bcc) intermediate state was discovered under uniaxial loading at sub-nanosecond timescales instead of the expected transformation to the omega-Zr phase. Experiments and simulations highlighted the importance of metastability and time dependence in phase transformations, emphasizing the need to consider kinetics in addition to the phase diagram in material crystalline structure prediction.
As theoretically hypothesized for several decades in group IV transition metals, we have discovered a dynamically stabilized body-centered cubic (bcc) intermediate state in Zr under uniaxial loading at sub-nanosecond timescales. Under ultrafast shock wave compression, rather than the transformation from alpha-Zr to the more disordered hex-3 equilibrium omega-Zr phase, in its place we find the formation of a previously unobserved nonequilibrium bcc metastable intermediate. We probe the compression-induced phase transition pathway in zirconium using time-resolved sub-picosecond x-ray diffraction analysis at the Linac Coherent Light Source. We also present molecular dynamics simulations using a potential derived from first-principles methods which independently predict this intermediate phase under ultrafast shock conditions. In contrast with experiments on longer timescale (> 10 ns) where the phase diagram alone is an adequate predictor of the crystalline structure of a material, our recent study highlights the importance of metastability and time dependence in the kinetics of phase transformations.

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