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In situ X-ray diffraction measurement of shock-wave-driven twinning and lattice dynamics

Author

Listed:
  • C. E. Wehrenberg

    (Lawrence Livermore National Laboratory)

  • D. McGonegle

    (Clarendon Laboratory, University of Oxford)

  • C. Bolme

    (Los Alamos National Laboratory, Bikini Atoll Road, SM-30)

  • A. Higginbotham

    (University of York)

  • A. Lazicki

    (Lawrence Livermore National Laboratory)

  • H. J. Lee

    (SLAC National Accelerator Laboratory)

  • B. Nagler

    (SLAC National Accelerator Laboratory)

  • H.-S. Park

    (Lawrence Livermore National Laboratory)

  • B. A. Remington

    (Lawrence Livermore National Laboratory)

  • R. E. Rudd

    (Lawrence Livermore National Laboratory)

  • M. Sliwa

    (Clarendon Laboratory, University of Oxford)

  • M. Suggit

    (Clarendon Laboratory, University of Oxford)

  • D. Swift

    (Lawrence Livermore National Laboratory)

  • F. Tavella

    (SLAC National Accelerator Laboratory)

  • L. Zepeda-Ruiz

    (Lawrence Livermore National Laboratory)

  • J. S. Wark

    (Clarendon Laboratory, University of Oxford)

Abstract

In situ femtosecond X-ray diffraction measurements reveal that the dominant mechanism of shock-wave-driven deformation in tantalum changes from twinning to dislocation slip as pressure increases.

Suggested Citation

  • C. E. Wehrenberg & D. McGonegle & C. Bolme & A. Higginbotham & A. Lazicki & H. J. Lee & B. Nagler & H.-S. Park & B. A. Remington & R. E. Rudd & M. Sliwa & M. Suggit & D. Swift & F. Tavella & L. Zepeda, 2017. "In situ X-ray diffraction measurement of shock-wave-driven twinning and lattice dynamics," Nature, Nature, vol. 550(7677), pages 496-499, October.
  • Handle: RePEc:nat:nature:v:550:y:2017:i:7677:d:10.1038_nature24061
    DOI: 10.1038/nature24061
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