Contents
2022
Volume: 7 Issue 2
7 Article(s)

Export citation format
Fundamental Physics at Extreme Light
Numerical investigation of spallation neutrons generated from petawatt-scale laser-driven proton beams
B. Martinez, S. N. Chen, S. Bolaños, N. Blanchot, G. Boutoux, W. Cayzac, C. Courtois, X. Davoine, A. Duval, V. Horny, I. Lantuejoul, L. Le Deroff, P. E. Masson-Laborde, G. Sary, B. Vauzour, R. Smets, L. Gremillet, and J. Fuchs
Laser-driven neutron sources could offer a promising alternative to those based on conventional accelerator technologies in delivering compact beams of high brightness and short duration. We examine this through particle-in-cell and Monte Carlo simulations that model, respectively, the laser acceleration of protons fro
Matter and Radiation at Extremes
  • Publication Date: Jan. 01, 1900
  • Vol. 7, Issue 2, 024401 (2022)
Observation of Zeeman splitting effect in a laser-driven coil
Baojun Zhu, Zhe Zhang, Chang Liu, Dawei Yuan, Weiman Jiang, Huigang Wei, Fang Li, Yihang Zhang, Bo Han, Lei Cheng, Shangqing Li, Jiayong Zhong, Xiaoxia Yuan, Bowei Tong, Wei Sun, Zhiheng Fang, Chen Wang, Zhiyong Xie, Neng Hua, Rong Wu, Zhanfeng Qiao, Guiyun Liang, Baoqiang Zhu, Jianqiang Zhu, Shinsuke Fujioka, and Yutong Li
Matter and Radiation at Extremes
  • Publication Date: Jan. 01, 1900
  • Vol. 7, Issue 2, 024402 (2022)
High Pressure Physics and Materials Science
Partnership for eXtreme Xtallography (PX2)—A state-of-the-art experimental facility for extreme-conditions crystallography: A case study of pressure-induced phase transition in natural ilvaite
Jingui Xu, Dongzhou Zhang, Sergey N. Tkachev, and Przemyslaw K. Dera
Single-crystal x-ray diffraction (SCXRD) is an important tool to study the crystal structure and phase transitions of crystalline materials at elevated pressures. The Partnership for eXtreme Xtallography (PX2) program at the GSECARS 13-BM-C beamline of the Advanced Photon Source aims to provide state-of-the-art experim
Matter and Radiation at Extremes
  • Publication Date: Jan. 01, 1900
  • Vol. 7, Issue 2, 028401 (2022)
Inertial Confinement Fusion Physics
Theoretical investigations on x-ray transport in radiation transport experiments on the Shenguang-III prototype laser facility
Guangwei Meng, Jun She, Tianming Song, Jiamin Yang, and Min Wang
Experiments exploring the propagation of heat waves within cylindrical CH foams were performed on the Shenguang-III prototype laser facility in 2012. In this paper, the radiation fluxes out of CH foam cylinders at different angles are analyzed theoretically using the two-dimensional radiation hydrodynamics code LARED-R
Matter and Radiation at Extremes
  • Publication Date: Jan. 01, 1900
  • Vol. 7, Issue 2, 025901 (2022)
Radiation and Hydrodynamics
Deceleration-stage Rayleigh–Taylor growth in a background magnetic field studied in cylindrical and Cartesian geometries
C. Samulski, B. Srinivasan, M. J.-E. Manuel, R. Masti, J. P. Sauppe, and J. Kline
Experiments have identified the Rayleigh–Taylor (RT) instability as one of the greatest obstacles to achieving inertial confinement fusion. Consequently, mitigation strategies to reduce RT growth and fuel–ablator mixing in the hotspot during the deceleration phase of the implosion are of great interest. In this work, t
Matter and Radiation at Extremes
  • Publication Date: Jan. 01, 1900
  • Vol. 7, Issue 2, 026902 (2022)