Two-dimensional particle-in-cell simulation shows that a target with subwavelength nanolayered front can reduce the reflection and increase the absorption of the energy of an intense short laser pulse. The electrons within the skin depth on the surfaces of the nanolayers are accelerated by JxB heating to relativistic velocities and ejected into the narrow vacuum spaces between the layers. They then propagate forward with most of the absorbed laser energy along the surfaces of the layers. Conversion of the laser energy into electron energy can be enhanced by optimizing the vacuum spacing between the nanolayers since the phase structure of the laser field in the target is modified. The effects of the layer width, length, and spacing on the en...
We show that both the flux and the cutoff energy of protons accelerated by ultraintens...
The use of targets with surface structures for laser-driven particle acceleration has potential to s...
Abstract The interaction of ultraintense laser pulses with solids is largely affected by the plasma ...
Laser interaction with a nanobrush target plasma is investigated at the SILEX-I laser facility [X. F...
An advanced cone-nanolayer target with nanolayers on both inside and outside of the hollow-cone tip ...
We have studied particle acceleration in different nanostructured targets irradiated by high intensi...
A simple model has been derived for expansion of a thin (up to 100s of nm thickness) target initiall...
The absorption of laser energy and dynamics of energetic electrons in dense plasma is fundamental to...
International audienceOur main goal is to describe and model the energy transfer from laser to parti...
Abstract: Ion acceleration in the interaction of ultrashort intense laser pulses ( ~ 2×1019 W/cm2, ...
The coupling of laser energy to electrons is fundamental to almost all topics in intense laser-plasm...
Efficient transport of fast electrons driven by intense laser solid interaction depends crucially on...
In the present paper, the possibility of generation of thin dense relativistic electron layers is sh...
Laser energy absorption to fast electrons during the interaction of an ultra-intense (10(20) Wcm(-2)...
Structured solid targets are widely investigated to increase the energy absorption of high-power las...
We show that both the flux and the cutoff energy of protons accelerated by ultraintens...
The use of targets with surface structures for laser-driven particle acceleration has potential to s...
Abstract The interaction of ultraintense laser pulses with solids is largely affected by the plasma ...
Laser interaction with a nanobrush target plasma is investigated at the SILEX-I laser facility [X. F...
An advanced cone-nanolayer target with nanolayers on both inside and outside of the hollow-cone tip ...
We have studied particle acceleration in different nanostructured targets irradiated by high intensi...
A simple model has been derived for expansion of a thin (up to 100s of nm thickness) target initiall...
The absorption of laser energy and dynamics of energetic electrons in dense plasma is fundamental to...
International audienceOur main goal is to describe and model the energy transfer from laser to parti...
Abstract: Ion acceleration in the interaction of ultrashort intense laser pulses ( ~ 2×1019 W/cm2, ...
The coupling of laser energy to electrons is fundamental to almost all topics in intense laser-plasm...
Efficient transport of fast electrons driven by intense laser solid interaction depends crucially on...
In the present paper, the possibility of generation of thin dense relativistic electron layers is sh...
Laser energy absorption to fast electrons during the interaction of an ultra-intense (10(20) Wcm(-2)...
Structured solid targets are widely investigated to increase the energy absorption of high-power las...
We show that both the flux and the cutoff energy of protons accelerated by ultraintens...
The use of targets with surface structures for laser-driven particle acceleration has potential to s...
Abstract The interaction of ultraintense laser pulses with solids is largely affected by the plasma ...