Strong field interaction of laser radiation

被引:315
作者
Pukhov, A [1 ]
机构
[1] Univ Dusseldorf, Inst Theoret Phys 1, D-40225 Dusseldorf, Germany
关键词
D O I
10.1088/0034-4885/66/1/202
中图分类号
O4 [物理学];
学科分类号
0702 ;
摘要
The Review covers recent progress in laser-matter interaction at intensities above 10(18) W cm(-2). At these intensities electrons swing in the laser pulse with relativistic energies. The laser electric field is already much stronger than the atomic fields, and any material is instantaneously ionized, creating plasma. The physics of relativistic laser-plasma is highly non-linear and kinetic. The best numerical tools applicable here are particle-in-cell (PIC) codes, which provide the most fundamental plasma model as an ensemble of charged particles. The three-dimensional (3D) PIC code Virtual Laser-Plasma Laboratory runs on a massively parallel computer tracking trajectories of up to 109 particles simultaneously. This allows one to simulate real laser-plasma experiments for the first time. When the relativistically intense laser pulses propagate through plasma, a bunch of new physical effects appears. The laser pulses are subject to relativistic self-channel ling and filamentation. The gigabar ponderomotive pressure of the laser pulse drives strong currents of plasma electrons in the laser propagation direction; these currents reach the Alfven limit and generate 100 MG quasistatic magnetic fields. These magnetic fields, in turn, lead to the mutual filament attraction and super-channel formation. The electrons in the channels are accelerated up to gigaelectionvolt energies and the ions gain multi-MeV energies. We discuss different mechanisms of particle acceleration and compare numerical simulations with experimental data. One of the very important applications of the relativistically strong laser beams is the fast ignition (FI) concept for the inertial fusion energy (IFE). Petawatt-class lasers may provide enough energy to isochorically ignite a pre-compressed target consisting of thermonuclear fuel. The FI approach would ease dramatically the constraints on the implosion symmetry and improve the energy gain. However, there is a set of problems to solve before the FI will work. The laser pulse cannot reach the dense core of the target directly. The laser energy must be converted into fast particles first and then transported through the overdense plasma region. The energy spectra of the laser-generated particle beams, their emittance and transport problems are discussed here. The laser-particle interaction at relativistic intensities is highly non-linear and higher laser harmonics are generated. In plasma, the high-harmonic generation is a collective effect-it appears to be quite effective when an intense laser pulse is reflected from the overdense plasma layer. The plasma boundary is then driven by the laser ponderomotive force and works as a relativistically oscillating mirror. Another interesting application is the amplification of short-pulse laser in plasma by a counter-propagating pump pulse. 3D PIC simulations suggest that multi-terawatt pulses of sub-10 fs duration can be generated this way.
引用
收藏
页码:47 / 101
页数:55
相关论文
共 148 条
[71]  
Kraft G, 2001, PHYS MEDICA, V17, P13
[72]  
Krall N., 1973, Principles of Plasma Physics
[73]  
KRUER WL, 1988, PHYSICS LASER PLASMA
[74]   Energetic proton production from relativistic laser interaction with high density plasmas [J].
Krushelnick, K ;
Clark, EL ;
Zepf, M ;
Davies, JR ;
Beg, FN ;
Machacek, A ;
Santala, MIK ;
Tatarakis, M ;
Watts, I ;
Norreys, PA ;
Dangor, AE .
PHYSICS OF PLASMAS, 2000, 7 (05) :2055-2061
[75]   Multi-MeV ion production from high-intensity laser interactions with underdense plasmas [J].
Krushelnick, K ;
Clark, EL ;
Najmudin, Z ;
Salvati, M ;
Santala, MIK ;
Tatarakis, M ;
Dangor, AE ;
Malka, V ;
Neely, D ;
Allott, R ;
Danson, C .
PHYSICAL REVIEW LETTERS, 1999, 83 (04) :737-740
[76]  
LANGDON AB, 1976, METHODS COMPUTATIONA, V16, P327
[77]   ELECTROMAGNETIC INSTABILITIES, FILAMENTATION, AND FOCUSING OF RELATIVISTIC ELECTRON-BEAMS [J].
LEE, R ;
LAMPE, M .
PHYSICAL REVIEW LETTERS, 1973, 31 (23) :1390-1393
[78]   Simulations of a meter-long plasma wakefield accelerator [J].
Lee, S ;
Katsouleas, T ;
Hemker, R ;
Mori, WB .
PHYSICAL REVIEW E, 2000, 61 (06) :7014-7021
[79]   TRANSPARENCY OPACITY OF A SOLID TARGET ILLUMINATED BY AN ULTRAHIGH-INTENSITY LASER-PULSE [J].
LEFEBVRE, E ;
BONNAUD, G .
PHYSICAL REVIEW LETTERS, 1995, 74 (11) :2002-2005
[80]   Short-pulse laser harmonics from oscillating plasma surfaces driven at relativistic intensity [J].
Lichters, R ;
MeyerterVehn, J ;
Pukhov, A .
PHYSICS OF PLASMAS, 1996, 3 (09) :3425-3437