Multiple ion acceleration mechanisms can occur when an ultrathin foil is irradiated with an intense laser pulse, with the dominant mechanism changing over the course of the interaction. Measurement of the spatial-intensity distribution of the beam of energetic protons is used to investigate the transition from radiation pressure acceleration to transparency-driven processes. It is shown numerically that radiation pressure drives an increased expansion of the target ions within the spatial extent of the laser focal spot, which induces a radial deflection of relatively low energy sheath-accelerated protons to form an annular distribution. Through variation of the target foil thickness, the opening angle of the ring is shown to be correlated t...
Proton acceleration from nanometer thin foils with intense laser pulses is investigated experimental...
International audienceThe interaction of short and intense laser pulses with plasmas or solids is a ...
This thesis was previously held under moratorium from 26th May 2021 until 26th May 2023.This thesis ...
Multiple ion acceleration mechanisms can occur when an ultrathin foil is irradiated with an intense ...
At sufficiently high laser intensities, the rapid heating to relativistic velocities and resulting d...
Multi-species ion acceleration from ultra-thin foils was studied experimentally, employing the Vulca...
The dynamics of the plasma critical density surface in an ultra-thin foil target irradiated by an ul...
Experiments investigating ion acceleration from laser-irradiated ultra-thin foils on the GEMINI lase...
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...
This thesis reports on experimental and numerical investigations of ion acceleration driven by the i...
Laser-driven ion sources are a rapidly developing technology producing high energy, high peak curren...
Ion acceleration driven by the interaction of an ultraintense (2x10^20 Wcm^-2) laser pulse with an u...
In this thesis, various novel aspects of laser-driven ion acceleration with contrast-enhanced laser ...
Proton acceleration from nanometer thin foils with intense laser pulses is investigated experimental...
International audienceThe interaction of short and intense laser pulses with plasmas or solids is a ...
This thesis was previously held under moratorium from 26th May 2021 until 26th May 2023.This thesis ...
Multiple ion acceleration mechanisms can occur when an ultrathin foil is irradiated with an intense ...
At sufficiently high laser intensities, the rapid heating to relativistic velocities and resulting d...
Multi-species ion acceleration from ultra-thin foils was studied experimentally, employing the Vulca...
The dynamics of the plasma critical density surface in an ultra-thin foil target irradiated by an ul...
Experiments investigating ion acceleration from laser-irradiated ultra-thin foils on the GEMINI lase...
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...
This thesis reports on experimental and numerical investigations of ion acceleration driven by the i...
Laser-driven ion sources are a rapidly developing technology producing high energy, high peak curren...
Ion acceleration driven by the interaction of an ultraintense (2x10^20 Wcm^-2) laser pulse with an u...
In this thesis, various novel aspects of laser-driven ion acceleration with contrast-enhanced laser ...
Proton acceleration from nanometer thin foils with intense laser pulses is investigated experimental...
International audienceThe interaction of short and intense laser pulses with plasmas or solids is a ...
This thesis was previously held under moratorium from 26th May 2021 until 26th May 2023.This thesis ...