High energy density plasma science with an ultrarelativistic electron beam

被引:82
作者
Joshi, C [1 ]
Blue, B
Clayton, CE
Dodd, E
Huang, C
Marsh, KA
Mori, WB
Wang, S
Hogan, MJ
O'Connell, C
Siemann, R
Watz, D
Muggli, P
Katsouleas, T
Lee, S
机构
[1] Univ Calif Los Angeles, Los Angeles, CA 90095 USA
[2] Stanford Univ, Stanford Linear Accelerator Ctr, Stanford, CA 94309 USA
[3] Univ So Calif, Los Angeles, CA 90089 USA
关键词
D O I
10.1063/1.1455003
中图分类号
O35 [流体力学]; O53 [等离子体物理学];
学科分类号
070204 ; 080103 ; 080704 ;
摘要
An intense, high-energy electron or positron beam can have focused intensities rivaling those of today's most powerful laser beams. For example, the 5 ps (full-width, half-maximum), 50 GeV beam at the Stanford Linear Accelerator Center (SLAC) at 1 kA and focused to a 3 micron rms spot size gives intensities of >10(20) W/cm(-2) at a repetition rate of >10 Hz. Unlike a ps or fs laser pulse which interacts with the surface of a solid target, the particle beam can readily tunnel through tens of cm of steel. However, the same particle beam can be manipulated quite effectively by a plasma that is a million times less dense than air! This is because of the incredibly strong collective fields induced in the plasma by the Coulomb force of the beam. The collective fields in turn react back onto the beam leading to many clearly observable phenomena. The beam paraticles can be: (1) Deflected leading to focusing, defocusing, or even steering of the beam; (2) undulated causing the emission of spontaneous betatron x-ray radiation and; (3) accelerated or decelerated by the plasma fields. Using the 28.5 GeV electron beam from the SLAC linac a series of experiments have been carried out that demonstrate clearly many of the above mentioned effects. The results can be compared with theoretical predictions and with two-dimensional and three-dimensional, one-to-one, particle-in-cell code simulations. These phenomena may have practical applications in future technologies including optical elements in particle beam lines, synchrotron light sources, and ultrahigh gradient accelerators. (C) 2002 American Institute of Physics.
引用
收藏
页码:1845 / 1855
页数:11
相关论文
共 40 条
[1]   Propagation of short electron pulses in a plasma channel [J].
Barov, N ;
Conde, ME ;
Gai, W ;
Rosenzweig, JB .
PHYSICAL REVIEW LETTERS, 1998, 80 (01) :81-84
[2]  
Barov N, 1996, PROCEEDINGS OF THE 1995 PARTICLE ACCELERATOR CONFERENCE, VOLS 1-5, P631
[3]  
BAROV N, 2000, PHYS REV ST ACCEL BE, V3
[4]   Magnetically self-focussing streams [J].
Bennett, WH .
PHYSICAL REVIEW, 1934, 45 (12) :0890-0897
[5]  
BLUE B, IN PRESS P 2001 PART
[6]   The National Ignition Facility - applications for inertial fusion energy and high-energy-density science [J].
Campbell, EM ;
Hogan, WJ .
PLASMA PHYSICS AND CONTROLLED FUSION, 1999, 41 :B39-B56
[7]   Measurements of radiation near an atomic spectral line from the interaction of a 30 GeV electron beam and a long plasma [J].
Catravas, P ;
Chattopadhyay, S ;
Esarey, E ;
Leemans, WP ;
Assmann, R ;
Decker, FJ ;
Hogan, MJ ;
Iverson, R ;
Siemann, RH ;
Walz, D ;
Whittum, D ;
Blue, B ;
Clayton, C ;
Joshi, C ;
Marsh, KA ;
Mori, WB ;
Wang, S ;
Katsouleas, T ;
Lee, S ;
Muggli, P .
PHYSICAL REVIEW E, 2001, 64 (04) :5-465025
[8]  
CLAYTON C, IN PRESS PHYS REV LE
[9]   REVERSE CURRENT INDUCED BY INJECTION OF A RELATIVISTIC ELECTRON BEAM INTO A PINCHED PLASMA [J].
COX, JL ;
BENNETT, WH .
PHYSICS OF FLUIDS, 1970, 13 (01) :182-&
[10]  
DAVIS JG, 1996, THESIS U CALIFORNIA