TY - JOUR
T1 - Ultrafast olivine-ringwoodite transformation during shock compression
AU - Okuchi, Takuo
AU - Seto, Yusuke
AU - Tomioka, Naotaka
AU - Matsuoka, Takeshi
AU - Albertazzi, Bruno
AU - Hartley, Nicholas J.
AU - Inubushi, Yuichi
AU - Katagiri, Kento
AU - Kodama, Ryosuke
AU - Pikuz, Tatiana A.
AU - Purevjav, Narangoo
AU - Miyanishi, Kohei
AU - Sato, Tomoko
AU - Sekine, Toshimori
AU - Sueda, Keiichi
AU - Tanaka, Kazuo A.
AU - Tange, Yoshinori
AU - Togashi, Tadashi
AU - Umeda, Yuhei
AU - Yabuuchi, Toshinori
AU - Yabashi, Makina
AU - Ozaki, Norimasa
N1 - Publisher Copyright:
© 2021, The Author(s).
PY - 2021/12/1
Y1 - 2021/12/1
N2 - 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.
AB - 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.
U2 - 10.1038/s41467-021-24633-4
DO - 10.1038/s41467-021-24633-4
M3 - Article
C2 - 34262045
AN - SCOPUS:85110603249
SN - 2041-1723
VL - 12
JO - Nature Communications
JF - Nature Communications
IS - 1
M1 - 4305
ER -