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Ultrafast olivine-ringwoodite transformation during shock compression

  • Takuo Okuchi
  • , Yusuke Seto
  • , Naotaka Tomioka
  • , Takeshi Matsuoka
  • , Bruno Albertazzi
  • , Nicholas J. Hartley
  • , Yuichi Inubushi
  • , Kento Katagiri
  • , Ryosuke Kodama
  • , Tatiana A. Pikuz
  • , Narangoo Purevjav
  • , Kohei Miyanishi
  • , Tomoko Sato
  • , Toshimori Sekine
  • , Keiichi Sueda
  • , Kazuo A. Tanaka
  • , Yoshinori Tange
  • , Tadashi Togashi
  • , Yuhei Umeda
  • , Toshinori Yabuuchi
  • Makina Yabashi, Norimasa Ozaki
  • Institute for Integrated Radiation and Nuclear Science, Kyoto University
  • Okayama University
  • Osaka University
  • Kobe University
  • JAMSTEC
  • Stanford Linear Accelerator Center
  • JASRI/SPring-8
  • RIKEN SPring-8 Center
  • Joint Institute for High Temperatures of the Russian Academy of Sciences
  • Hiroshima University Graduate School of Biomedical and Health Sciences
  • Center for High Pressure Science & Technology Advanced Research
  • ILFOV

Résultats de recherche: Contribution à un journalArticleRevue par des pairs

Résumé

Meteorites from interplanetary space often include high-pressure polymorphs of their constituent minerals, which provide records of past hypervelocity collisions. These collisions were expected to occur between kilometre-sized asteroids, generating transient high-pressure states lasting for several seconds to facilitate mineral transformations across the relevant phase boundaries. However, their mechanisms in such a short timescale were never experimentally evaluated and remained speculative. Here, we show a nanosecond transformation mechanism yielding ringwoodite, which is the most typical high-pressure mineral in meteorites. An olivine crystal was shock-compressed by a focused high-power laser pulse, and the transformation was time-resolved by femtosecond diffractometry using an X-ray free electron laser. Our results show the formation of ringwoodite through a faster, diffusionless process, suggesting that ringwoodite can form from collisions between much smaller bodies, such as metre to submetre-sized asteroids, at common relative velocities. Even nominally unshocked meteorites could therefore contain signatures of high-pressure states from past collisions.

langue originaleAnglais
Numéro d'article4305
journalNature Communications
Volume12
Numéro de publication1
Les DOIs
étatPublié - 1 déc. 2021

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