Direct imaging of shock wave splitting in diamond at Mbar pressure

Author:

Makarov Sergey1ORCID,Dyachkov Sergey1ORCID,Pikuz Tatiana2ORCID,Katagiri Kento34ORCID,Nakamura Hirotaka3ORCID,Zhakhovsky Vasily1ORCID,Inogamov Nail5ORCID,Khokhlov Victor5ORCID,Martynenko Artem1ORCID,Albertazzi Bruno6,Rigon Gabriel67ORCID,Mabey Paul68,Hartley Nicholas J.9ORCID,Inubushi Yuichi110ORCID,Miyanishi Kohei11,Sueda Keiichi11ORCID,Togashi Tadashi110ORCID,Yabashi Makina110ORCID,Yabuuchi Toshinori110ORCID,Okuchi Takuo12ORCID,Kodama Ryosuke34,Pikuz Sergey1ORCID,Koenig Michel36ORCID,Ozaki Norimasa34ORCID

Affiliation:

1. Joint Institute for High Temperatures of Russian Academy of Sciences 1 , 13/2 Izhorskaya St., 125412 Moscow, Russia

2. Institute for Open and Transdisciplinary Research Initiative, Osaka University 2 , Suita, Osaka 565-0871, Japan

3. Graduate School of Engineering, Osaka University 3 , Suita, Osaka 565-0817, Japan

4. Institute of Laser Engineering, Osaka University 4 , Suita, Osaka 565-0871, Japan

5. Landau Institute for Theoretical Physics of Russian Academy of Sciences 5 , 1-A Akademika Semenova Ave., Chernogolovka, Moscow Region 142432, Russia

6. LULI, CNRS, CEA, École Polytechnique, UPMC, Université Paris 06: Sorbonne Universités, Institut Polytechnique de Paris 6 , F-91128 Palaiseau Cedex, France

7. Graduate School of Science, Nagoya University 7 , Chikusa Ku, Nagoya, Aichi 4648602, Japan

8. Department of Physics, Experimental Biophysics and Space Sciences, Freie Universität Berlin 8 , Arnimallee 14, 14195 Berlin, Germany

9. SLAC National Accelerator Laboratory 9 , 2575 Sand Hill Road, Menlo Park, California 94025, USA

10. Japan Synchrotron Radiation Research Institute 10 , Sayo, Hyogo 679-5198, Japan

11. RIKEN SPring-8 Center 11 , Sayo, Hyogo 679-5148, Japan

12. Institute for Integrated Radiation and Nuclear Science, Kyoto University 12 , Yoshida-honmachi, Sakyo-ku, Kyoto 606-8501, Japan

Abstract

Understanding the behavior of matter at extreme pressures of the order of a megabar (Mbar) is essential to gain insight into various physical phenomena at macroscales—the formation of planets, young stars, and the cores of super-Earths, and at microscales—damage to ceramic materials and high-pressure plastic transformation and phase transitions in solids. Under dynamic compression of solids up to Mbar pressures, even a solid with high strength exhibits plastic properties, causing the induced shock wave to split in two: an elastic precursor and a plastic shock wave. This phenomenon is described by theoretical models based on indirect measurements of material response. The advent of x-ray free-electron lasers (XFELs) has made it possible to use their ultrashort pulses for direct observations of the propagation of shock waves in solid materials by the method of phase-contrast radiography. However, there is still a lack of comprehensive data for verification of theoretical models of different solids. Here, we present the results of an experiment in which the evolution of the coupled elastic–plastic wave structure in diamond was directly observed and studied with submicrometer spatial resolution, using the unique capabilities of the x-ray free-electron laser (XFEL). The direct measurements allowed, for the first time, the fitting and validation of the 2D failure model for diamond in the range of several Mbar. Our experimental approach opens new possibilities for the direct verification and construction of equations of state of matter in the ultra-high-stress range, which are relevant to solving a variety of problems in high-energy-density physics.

Funder

Japan Society for the Promotion of Science

Ministry of Science and Higher Education of the Russian Federation

Publisher

AIP Publishing

Subject

Electrical and Electronic Engineering,Nuclear Energy and Engineering,Nuclear and High Energy Physics,Atomic and Molecular Physics, and Optics

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