Hot electron retention in laser plasma created under terawatt subnanosecond irradiation of Cu targets
Creators
- 1. Institute of Plasma Physics and Laser Microfusion, Warsaw (Poland)
- 2. Faculty of Nuclear Science and Physics Engineering, Czech Technical University in Prague, 115 19, Prague (Czech Republic)
- 3. P.N. Lebedev Physical Institute of RAS, 119991, Moscow (Russian Federation)
- 4. Univ. Bordeaux, CNRS, CEA, CELIA, UMR 5107, F-33405, Talence (France)
- 5. Institute of Plasma Physics, Czech Academy of Sciences, 182 00, Prague (Czech Republic)
- 6. Department of Radiation and Chemical Physics, Institute of Physics, Czech Academy of Sciences, 182 21, Praha (Czech Republic)
- 7. National Research Nuclear University MEPhI, 115409, Moscow (Russian Federation)
- 8. National Institute of Optics, CNR, Pisa (Italy)
Description
Laser plasma created by intense light interaction with matter plays an important role in high-energy density fundamental studies and many prospective applications. Terawatt laser-produced plasma related to the low collisional and relativistic domain may form supersonic flows and is prone to the generation of strong spontaneous magnetic fields. The comprehensive experimental study presented in this work provides a reference point for the theoretical description of laser-plasma interaction, focusing on the hot electron generation. It experimentally quantifies the phenomenon of hot electron retention, which serves as a boundary condition for most plasma expansion models. Hot electrons, being responsible for nonlocal thermal and electric conductivities, are important for a large variety of processes in such plasmas. The multiple-frame complex-interferometric data providing information on time resolved spontaneous magnetic fields and electron density distribution, complemented by particle spectra and x-ray measurements, were obtained under irradiation of the planar massive Cu and plastic-coated targets by the iodine laser pulse with an intensity of above 1016 W cm−2. The data shows that the hot electron emission from the interaction region outside the target is strongly suppressed, while the electron flow inside the target, i.e. in the direction of the incident laser beam, is a dominant process and contains almost the whole hot electron population. The obtained quantitative characterization of this phenomenon is of primary importance for plasma applications spanning from ICF to laser-driven discharge magnetic field generators. (paper)
Availability note (English)
Available from http://dx.doi.org/10.1088/1361-6587/abb74bAdditional details
Identifiers
Publishing Information
- Journal Title
- Plasma Physics and Controlled Fusion
- Journal Volume
- 62
- Journal Issue
- 11
- Journal Page Range
- [15 p.]
- ISSN
- 0741-3335
- CODEN
- PPCFET
INIS
- Country of Publication
- United Kingdom
- Country of Input or Organization
- International Atomic Energy Agency (IAEA)
- INIS RN
- 52069006
- Subject category
- S70: PLASMA PHYSICS AND FUSION TECHNOLOGY;
- Descriptors DEI
- BOUNDARY CONDITIONS; ELECTRIC CONDUCTIVITY; ELECTRON DENSITY; ELECTRON EMISSION; ENERGY DENSITY; IODINE LASERS; IRRADIATION; LASER-PRODUCED PLASMA; MAGNETIC FIELDS; PLASMA EXPANSION; RELATIVISTIC RANGE; SUPERSONIC FLOW; TIME RESOLUTION; X RADIATION
- Descriptors DEC
- ELECTRICAL PROPERTIES; ELECTROMAGNETIC RADIATION; EMISSION; ENERGY RANGE; EXPANSION; FLUID FLOW; GAS LASERS; IONIZING RADIATIONS; LASERS; PHYSICAL PROPERTIES; PLASMA; RADIATIONS; RESOLUTION; TIMING PROPERTIES