Ion acceleration driven by the interaction of an ultraintense (2x10^20 Wcm^-2) laser pulse with an ultrathin (40nm) foil target is experimentally and numerically investigated. Protons accelerated by sheath fields and via laser radiation pressure are angularly separated and identified based on their directionality and signature features (e.g. transverse instabilities) in the measured spatial-intensity distribution. A low divergence, high energy proton component is also detected when the heated target electrons expand and the target becomes relativistically transparent during the interaction. 2D and 3D particle-in-cell (PIC) simulations indicate that under these conditions a plasma jet is formed at the target rear, supported by a self-generat...
Laser-driven ion sources are a rapidly developing technology producing high energy, high peak curren...
We report an autofocused, enhanced proton acceleration by the interaction of an intense laser pulse ...
International audienceWe use two-dimensional (2D) particle-in-cell simulations to study the interact...
Ion acceleration driven by the interaction of an ultraintense (2x10^20 Wcm^-2) laser pulse with an u...
At sufficiently high laser intensities, the rapid heating to relativistic velocities and resulting d...
This thesis reports on experimental and numerical investigations of ion acceleration and the underly...
This thesis presents experimental measurements, supported by particle-in-cell simulations, of ion be...
International audienceThe interaction of short and intense laser pulses with plasmas or solids is a ...
Abstract The interaction of ultraintense laser pulses with solids is largely affected by the plasma ...
Spectrally-peaked proton beams of high charge (E-p approximate to 8 MeV, Delta E approximate to 4 Me...
Laser-driven ion sources are a rapidly developing technology producing high energy, high peak curren...
We report an autofocused, enhanced proton acceleration by the interaction of an intense laser pulse ...
International audienceWe use two-dimensional (2D) particle-in-cell simulations to study the interact...
Ion acceleration driven by the interaction of an ultraintense (2x10^20 Wcm^-2) laser pulse with an u...
At sufficiently high laser intensities, the rapid heating to relativistic velocities and resulting d...
This thesis reports on experimental and numerical investigations of ion acceleration and the underly...
This thesis presents experimental measurements, supported by particle-in-cell simulations, of ion be...
International audienceThe interaction of short and intense laser pulses with plasmas or solids is a ...
Abstract The interaction of ultraintense laser pulses with solids is largely affected by the plasma ...
Spectrally-peaked proton beams of high charge (E-p approximate to 8 MeV, Delta E approximate to 4 Me...
Laser-driven ion sources are a rapidly developing technology producing high energy, high peak curren...
We report an autofocused, enhanced proton acceleration by the interaction of an intense laser pulse ...
International audienceWe use two-dimensional (2D) particle-in-cell simulations to study the interact...