DocumentCode
2560551
Title
Effects of preplasma scale length and critical surface dynamics on laser energy coupling to hot electrons
Author
Gray, R.J. ; Carroll, D.C. ; Yuan, X.H. ; Brenner, C.M. ; Burza, M. ; Coury, M. ; Lancaster, K.L. ; Lin, X.X. ; Quinn, M.N. ; Tresca, O. ; Wahlsrom, C. -G ; Neely, D. ; McKenna, P.
Author_Institution
Dept. of Phys., Univ. of Strathclyde, Glasgow, UK
fYear
2012
fDate
8-13 July 2012
Abstract
Summary form only given. Applications of intense laser-dense plasma interactions such as the fast ignition approach to fusion and laser-driven ion acceleration depend on the generation and transport of large currents of energetic electrons. The efficiency of coupling laser energy into fast electrons is a key issue for these applications and is sensitive to the scale length of the preformed plasma, the extent of the underdense plasma which the laser pulse propagates through and the dynamics of the critical density plasma surface. We report results from a recent experiment employing the VULCAN petawatt laser in which a controlled and well characterized preformed plasma is produced at the front surface of solid targets. The laser energy coupling to fast electrons is diagnosed by complementary measurement of the reflected laser light, K[L emission from a buried fluorescent layer and proton acceleration from the target rear surface. We find that two distinct regimes of laser energy coupling to fast electrons occur as the preplasma density scale length is increased. The extent of the underdense plasma is shown to be a critical factor, as this affects the laser beam propagation via inducing channeling and beam filamentation. An increase in laser energy absorption in the limit of large underdense plasma is attributed to `volume absorption´ processes. The importance of the shape and dynamics of the critical density surface is also elucidated with the aid of experiment and hydrodynamic, ray-tracing and PIC simulations.
Keywords
channelling; hydrodynamics; ignition; plasma density; plasma light propagation; plasma simulation; plasma-wall interactions; ray tracing; PIC simulation; VULCAN petawatt laser; beam filamentation; buried fluorescent layer; channeling; controlled preformed plasma; coupling laser energy efficiency; critical density plasma surface dynamics; critical density surface dynamics; critical density surface shape; critical surface dynamics effect; energetic electrons; fast electrons; fast ignition approach; front surface; hot electrons; hydrodynamic simulation; intense laser-dense plasma interactions; large underdense plasma limit; laser beam propagation; laser energy absorption; laser energy coupling regimes; laser pulse; laser-driven ion acceleration; preplasma density scale length; preplasma scale length effect; proton acceleration; ray-tracing simulation; reflected laser light measurement; solid targets; target rear surface; underdense plasma extent; volume absorption processes; Couplings; Laser fusion; Laser theory; Measurement by laser beam; Plasmas; Surface emitting lasers;
fLanguage
English
Publisher
ieee
Conference_Titel
Plasma Science (ICOPS), 2012 Abstracts IEEE International Conference on
Conference_Location
Edinburgh
ISSN
0730-9244
Print_ISBN
978-1-4577-2127-4
Electronic_ISBN
0730-9244
Type
conf
DOI
10.1109/PLASMA.2012.6383673
Filename
6383673
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