4.7 Article

High-power laser experiment forming a supercritical collisionless shock in a magnetized uniform plasma at rest

期刊

PHYSICAL REVIEW E
卷 105, 期 2, 页码 -

出版社

AMER PHYSICAL SOC
DOI: 10.1103/PhysRevE.105.025203

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资金

  1. joint research project of Institute of Laser Engineering, Osaka University, JSPS KAKENHI [18H01232, 19H01868, 17K18270, 18H01245, 18H01246, 19K14712, 17J03893, 15H02154]
  2. Sumitomo Foundation for environmental research projects [203099]
  3. JSPS Core-to-Core Program B: AsiaAfrica Science Platforms Grant [JPJSCCB20190003]
  4. Aoyama Gakuin University Research Institute
  5. Grants-in-Aid for Scientific Research [18H01245, 19K14712, 19H01868, 17J03893, 18H01232, 15H02154, 17K18270, 18H01246] Funding Source: KAKEN

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We present an experimental method and simulation results to generate quasiperpendicular supercritical magnetized collisionless shocks, which clarify the structures of plasma density and temperatures.
We present an experimental method to generate quasiperpendicular supercritical magnetized collisionless shocks. In our experiment, ambient nitrogen (N) plasma is at rest and well magnetized, and it has uniform mass density. The plasma is pushed by laser-driven ablation aluminum (Al) plasma. Streaked optical pyrometry and spatially resolved laser collective Thomson scattering clarify structures of plasma density and temperatures, which are compared with one-dimensional particle-in-cell simulations. It is indicated that just after the laser irradiation, the Al plasma is magnetized by a self-generated Biermann battery field, and the plasma slaps the incident N plasma. The compressed external field in the N plasma reflects N ions, leading to counterstreaming magnetized N flows. Namely, we identify the edge of the reflected N ions. Such interacting plasmas form a magnetized collisionless shock.

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