Literature DB >> 29072261

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

C E Wehrenberg1, D McGonegle2, C Bolme3, A Higginbotham4, A Lazicki1, H J Lee5, B Nagler5, H-S Park1, B A Remington1, R E Rudd1, M Sliwa2, M Suggit2, D Swift1, F Tavella5, L Zepeda-Ruiz1, J S Wark2.   

Abstract

Pressure-driven shock waves in solid materials can cause extreme damage and deformation. Understanding this deformation and the associated defects that are created in the material is crucial in the study of a wide range of phenomena, including planetary formation and asteroid impact sites, the formation of interstellar dust clouds, ballistic penetrators, spacecraft shielding and ductility in high-performance ceramics. At the lattice level, the basic mechanisms of plastic deformation are twinning (whereby crystallites with a mirror-image lattice form) and slip (whereby lattice dislocations are generated and move), but determining which of these mechanisms is active during deformation is challenging. Experiments that characterized lattice defects have typically examined the microstructure of samples after deformation, and so are complicated by post-shock annealing and reverberations. In addition, measurements have been limited to relatively modest pressures (less than 100 gigapascals). In situ X-ray diffraction experiments can provide insights into the dynamic behaviour of materials, but have only recently been applied to plasticity during shock compression and have yet to provide detailed insight into competing deformation mechanisms. Here we present X-ray diffraction experiments with femtosecond resolution that capture in situ, lattice-level information on the microstructural processes that drive shock-wave-driven deformation. To demonstrate this method we shock-compress the body-centred-cubic material tantalum-an important material for high-energy-density physics owing to its high shock impedance and high X-ray opacity. Tantalum is also a material for which previous shock compression simulations and experiments have provided conflicting information about the dominant deformation mechanism. Our experiments reveal twinning and related lattice rotation occurring on the timescale of tens of picoseconds. In addition, despite the common association between twinning and strong shocks, we find a transition from twinning to dislocation-slip-dominated plasticity at high pressure (more than 150 gigapascals), a regime that recovery experiments cannot accurately access. The techniques demonstrated here will be useful for studying shock waves and other high-strain-rate phenomena, as well as a broad range of processes induced by plasticity.

Entities:  

Year:  2017        PMID: 29072261     DOI: 10.1038/nature24061

Source DB:  PubMed          Journal:  Nature        ISSN: 0028-0836            Impact factor:   49.962


  6 in total

1.  Dynamic plasticity and failure of high-purity alumina under shock loading.

Authors:  M W Chen; J W McCauley; D P Dandekar; N K Bourne
Journal:  Nat Mater       Date:  2006-07-02       Impact factor: 43.841

2.  Femtosecond visualization of lattice dynamics in shock-compressed matter.

Authors:  D Milathianaki; S Boutet; G J Williams; A Higginbotham; D Ratner; A E Gleason; M Messerschmidt; M M Seibert; D C Swift; P Hering; J Robinson; W E White; J S Wark
Journal:  Science       Date:  2013-10-11       Impact factor: 47.728

3.  Nanosecond white-light Laue diffraction measurements of dislocation microstructure in shock-compressed single-crystal copper.

Authors:  Matthew J Suggit; Andrew Higginbotham; James A Hawreliak; Gabriele Mogni; Giles Kimminau; Patrick Dunne; Andrew J Comley; Nigel Park; Bruce A Remington; Justin S Wark
Journal:  Nat Commun       Date:  2012       Impact factor: 14.919

4.  Strength of shock-loaded single-crystal tantalum [100] determined using in situ broadband x-ray Laue diffraction.

Authors:  A J Comley; B R Maddox; R E Rudd; S T Prisbrey; J A Hawreliak; D A Orlikowski; S C Peterson; J H Satcher; A J Elsholz; H-S Park; B A Remington; N Bazin; J M Foster; P Graham; N Park; P A Rosen; S R Rothman; A Higginbotham; M Suggit; J S Wark
Journal:  Phys Rev Lett       Date:  2013-03-11       Impact factor: 9.161

5.  Anomalous elastic response of silicon to uniaxial shock compression on nanosecond time scales.

Authors:  A Loveridge-Smith; A Allen; J Belak; T Boehly; A Hauer; B Holian; D Kalantar; G Kyrala; R W Lee; P Lomdahl; M A Meyers; D Paisley; S Pollaine; B Remington; D C Swift; S Weber; J S Wark
Journal:  Phys Rev Lett       Date:  2001-03-12       Impact factor: 9.161

6.  Phase Transformation in Tantalum under Extreme Laser Deformation.

Authors:  C-H Lu; E N Hahn; B A Remington; B R Maddox; E M Bringa; M A Meyers
Journal:  Sci Rep       Date:  2015-10-19       Impact factor: 4.379

  6 in total
  7 in total

1.  Materials science: Atomistic views of deformation.

Authors:  Neil K Bourne
Journal:  Nature       Date:  2017-10-25       Impact factor: 49.962

2.  Full strain tensor measurements with X-ray diffraction and strain field mapping: a simulation study.

Authors:  M X Tang; J W Huang; J C E; Y Y Zhang; S N Luo
Journal:  J Synchrotron Radiat       Date:  2020-04-15       Impact factor: 2.616

3.  Fingerprinting shock-induced deformations via diffraction.

Authors:  Avanish Mishra; Cody Kunka; Marco J Echeverria; Rémi Dingreville; Avinash M Dongare
Journal:  Sci Rep       Date:  2021-05-10       Impact factor: 4.379

4.  An approach for the measurement of the bulk temperature of single crystal diamond using an X-ray free electron laser.

Authors:  A Descamps; B K Ofori-Okai; K Appel; V Cerantola; A Comley; J H Eggert; L B Fletcher; D O Gericke; S Göde; O Humphries; O Karnbach; A Lazicki; R Loetzsch; D McGonegle; C A J Palmer; C Plueckthun; T R Preston; R Redmer; D G Senesky; C Strohm; I Uschmann; T G White; L Wollenweber; G Monaco; J S Wark; J B Hastings; U Zastrau; G Gregori; S H Glenzer; E E McBride
Journal:  Sci Rep       Date:  2020-09-03       Impact factor: 4.379

5.  Femtosecond quantification of void evolution during rapid material failure.

Authors:  James Coakley; Andrew Higginbotham; David McGonegle; Jan Ilavsky; Thomas D Swinburne; Justin S Wark; Khandaker M Rahman; Vassili A Vorontsov; David Dye; Thomas J Lane; Sébastien Boutet; Jason Koglin; Joseph Robinson; Despina Milathianaki
Journal:  Sci Adv       Date:  2020-12-16       Impact factor: 14.136

6.  Investigating off-Hugoniot states using multi-layer ring-up targets.

Authors:  D McGonegle; P G Heighway; M Sliwa; C A Bolme; A J Comley; L E Dresselhaus-Marais; A Higginbotham; A J Poole; E E McBride; B Nagler; I Nam; M H Seaberg; B A Remington; R E Rudd; C E Wehrenberg; J S Wark
Journal:  Sci Rep       Date:  2020-08-06       Impact factor: 4.379

7.  Ultrafast x-ray diffraction study of melt-front dynamics in polycrystalline thin films.

Authors:  Tadesse A Assefa; Yue Cao; Soham Banerjee; Sungwon Kim; Dongjin Kim; Heemin Lee; Sunam Kim; Jae Hyuk Lee; Sang-Youn Park; Intae Eom; Jaeku Park; Daewoog Nam; Sangsoo Kim; Sae Hwan Chun; Hyojung Hyun; Kyung Sook Kim; Pavol Juhas; Emil S Bozin; Ming Lu; Changyong Song; Hyunjung Kim; Simon J L Billinge; Ian K Robinson
Journal:  Sci Adv       Date:  2020-01-17       Impact factor: 14.136

  7 in total

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