High Power Laser Science and Engineering, Volume. 4, Issue 3, 03000e33(2016)
Influence of laser polarization on collective electron dynamics in ultraintense laser–foil interactions
Fig. 1. (a)–(d) Electron density and laser intensity from a 2D PIC simulation employing circularly polarized light, for target thickness: (a)
Fig. 2. (a) Layout of the laser beam path in the target chamber. The laser intensity contrast is increased using a double plasma mirror. Wave plates are inserted before focusing to vary the laser polarization. (b) Schematic showing the position of the IP stack detector used to measure the electron spatial-intensity distribution.
Fig. 3. Measured electron density distribution. (a–d) Electron density as measured using IP for
Fig. 4. Measured electron density distribution. (a–d) Electron density as measured using IP for
Fig. 5. (a) Electron density for a
Fig. 6. (a) 2D (
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Bruno Gonzalez-Izquierdo, Ross J. Gray, Martin King, Robbie Wilson, Rachel J. Dance, Haydn Powell, David A. MacLellan, John McCreadie, Nicholas M. H. Butler, Steve Hawkes, James S. Green, Chris D. Murphy, Luca C. Stockhausen, David C. Carroll, Nicola Booth, Graeme G. Scott, Marco Borghesi, David Neely, Paul McKenna. Influence of laser polarization on collective electron dynamics in ultraintense laser–foil interactions[J]. High Power Laser Science and Engineering, 2016, 4(3): 03000e33
Special Issue: HIGH ENERGY DENSITY PHYSICS AND HIGH POWER LASER
Received: Jun. 24, 2016
Accepted: Aug. 4, 2016
Published Online: Nov. 7, 2016
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