We report on the development of new materials for laser-ion acceleration applicable for the advanced mechanism of radiation-pressure-acceleration. These targets are ultra-thin with thicknesses of just a few nm. For several years, diamond-like carbon foils in this thickness range can be produced. An alternative material containing more than one ion-species has the potential to further improve the acceleration mechanism. The fabrication and characterization of self-supporting polymer-based targets will be described in this paper. Furthermore, we show the significant influence on a radiation-pressure induced acceleration process by experimental data
The process of radiation pressure acceleration (RPA) of ions is investigated with the aim of suppres...
The measurements reported here provide scaling laws for the acceleration process in the ultra-short ...
Ion acceleration resulting from the interaction of ultra-high intensity (2 x 10(20) W/cm(2)) and ult...
We report on the production and characterization of polymer-based ultra-thin (sub 10 nm) foils suite...
Experimental results on the acceleration of protons and carbon ions from ultra-thin polymer foils at...
We present first time data of monoenergetic multi-ion acceleration in the radiation-pressure-dominat...
We discuss ion acceleration by irradiating an ultra thin target with an intense laser pulse. We have...
Experiments on ion acceleration by irradiation of ultra-thin diamond-like carbon (DLC) foils, with t...
Experimental results on the acceleration of protons and carbonions from ultra-thin polymer foils at ...
The acceleration of sub-wavelength, solid-density plasma foils by the ultraintense radiation pressur...
We report on experimental investigations of ion acceleration from thin foil targets irradiated with ...
In this study, ion acceleration from thin planar target foils irradiated by ultrahigh-contrast (10(1...
Experiments on laser-induced ion acceleration from ultra-thin (nm) foil targets reveal a dramatic in...
Enhanced backward-acceleration of ions is experimentally observed when ultra-short, high-intensity a...
Experiments investigating ion acceleration from laser-irradiated ultra-thin foils on the GEMINI lase...
The process of radiation pressure acceleration (RPA) of ions is investigated with the aim of suppres...
The measurements reported here provide scaling laws for the acceleration process in the ultra-short ...
Ion acceleration resulting from the interaction of ultra-high intensity (2 x 10(20) W/cm(2)) and ult...
We report on the production and characterization of polymer-based ultra-thin (sub 10 nm) foils suite...
Experimental results on the acceleration of protons and carbon ions from ultra-thin polymer foils at...
We present first time data of monoenergetic multi-ion acceleration in the radiation-pressure-dominat...
We discuss ion acceleration by irradiating an ultra thin target with an intense laser pulse. We have...
Experiments on ion acceleration by irradiation of ultra-thin diamond-like carbon (DLC) foils, with t...
Experimental results on the acceleration of protons and carbonions from ultra-thin polymer foils at ...
The acceleration of sub-wavelength, solid-density plasma foils by the ultraintense radiation pressur...
We report on experimental investigations of ion acceleration from thin foil targets irradiated with ...
In this study, ion acceleration from thin planar target foils irradiated by ultrahigh-contrast (10(1...
Experiments on laser-induced ion acceleration from ultra-thin (nm) foil targets reveal a dramatic in...
Enhanced backward-acceleration of ions is experimentally observed when ultra-short, high-intensity a...
Experiments investigating ion acceleration from laser-irradiated ultra-thin foils on the GEMINI lase...
The process of radiation pressure acceleration (RPA) of ions is investigated with the aim of suppres...
The measurements reported here provide scaling laws for the acceleration process in the ultra-short ...
Ion acceleration resulting from the interaction of ultra-high intensity (2 x 10(20) W/cm(2)) and ult...