DocumentCode
3331409
Title
Effect of prepulse on fast electron lateral transport at the target surface irradiated by intense femtosecond laser pulses
Author
Li, Y.T. ; Lin, X.X. ; Lu, Xinyi ; Wang, S.J. ; Liu, B.C. ; Liu, Frank ; Du, Fengpo ; Li, Cong ; Zhou, M.L. ; Zhang, Leiqi ; Liu, Xindong ; Wang, Jiacheng ; Liu, Frank ; Liu, X.L. ; Chen, L.M. ; Wang, Z.H. ; Ma, J.L. ; Wei, Z.Y. ; Zhang, Juyong
Author_Institution
Beijing Nat. Lab. for Condensed Matter Phys., Chinese Acad. of Sci., Beijing, China
fYear
2010
fDate
20-24 June 2010
Firstpage
1
Lastpage
1
Abstract
Summary form only given. The effects of preplasma on lateral fast electron transport at front target surface irradiated by ultraintense (>1018 W/cm2) laser pulses are experimentally investigated. A spherically bent quartz crystal is used to record two-dimensional spatially resolved Kα x-ray emission resulting from fast electron transport. A large (~ 600μm in diameter) annular Kα halo structure surrounding a central spot is observed when a preplasma is presented. Furthermore, the halo size increases with the preplasma scale length, and it finally vanishes when the scale length is sufficiently large. Moreover, an obvious reduction of the Kα yield measured by a single photon counting charge-coupled device (CCD) is observed for a large preplasma scale length. Specially designed step-like target is used to identify the possible electron transport mechanisms resulting in the experimental observations. It is believed that the halo of the Kα x-ray emission is mainly generated by the out-going fast electrons laterally diffused in the self-generated magnetic and electrostatic fields in the preplasma. This understanding is supported by the simulated fast electron trajectories in specified magnetic and electrostatic fields using a two-dimensional numerical model.
Keywords
plasma X-ray sources; plasma diagnostics; plasma simulation; plasma transport processes; Kalpha X-ray emission; Kalpha halo structure; charge-coupled device; electron transport mechanism; fast electron lateral transport; intense femtosecond laser pulse; out-going fast electron; preplasma scale length; prepulse effect; self-generated electrostatic field; self-generated magnetic field; simulated fast electron trajectory; spherically bent quartz crystal; two-dimensional numerical model; ultraintense laser pulse; Charge coupled devices; Current measurement; Electron emission; Electrostatics; Length measurement; Numerical models; Optical pulses; Spatial resolution; Surface emitting lasers; X-ray lasers;
fLanguage
English
Publisher
ieee
Conference_Titel
Plasma Science, 2010 Abstracts IEEE International Conference on
Conference_Location
Norfolk, VA
ISSN
0730-9244
Print_ISBN
978-1-4244-5474-7
Electronic_ISBN
0730-9244
Type
conf
DOI
10.1109/PLASMA.2010.5534124
Filename
5534124
Link To Document