A self-consistent one-dimensional (1D) flying mirror model is developed for description of an interaction of an ultra-intense laser pulse with a thin plasma layer (foil). In this model, electrons of the foil can have large longitudinal displacements and relativistic longitudinal momenta. An approximate analytical solution for a transmitted field is derived. Transmittance of the foil shows not only a nonlinear dependence on the amplitude of the incident laser pulse, but also time dependence and shape dependence in the high-transparency regime. The results are compared with particle-in-cell (PIC) simulations and a good agreement is ascertained. Shaping of incident laser pulses using the flying mirror model is also considered. It can be used e...
The interaction of a strong electromagnetic wave with a layer of overdense plasma is considered unde...
Relativistic flying mirrors in plasmas are realized as thin dense electron (or electron–ion) layers ...
In this paper, we apply an analytical model [V.V. Kulagin et al., Phys. Plasmas 14, 113101 (2007)] t...
Interaction of a high-power laser pulse having a sharp front with a thin plasma layer is considered....
We report on the realistic scheme of intense X-rays and γ-radiation generation in a laser interactio...
Generation of petawatt-class pulses with a nearly single-cycle duration or with a strongly asymmetri...
The nonlinear interaction of an ultraintense laser pulse with a thin foil modifies the shape, the fr...
An analytical description of the interaction of laser light with a foil, described as a thin slab of...
This thesis presents experimental and simulation results of the properties of the reflected and tran...
The dynamics of the plasma critical density surface in an ultra-thin foil target irradiated by an ul...
The collective response of electrons in an ultrathin foil target irradiated by an ultraintense (~6x1...
The up-shifting and longitudinal compression of electromagnetic waves has been shown possible with r...
This thesis was previously held under moratorium from 26th May 2021 until 26th May 2023.This thesis ...
Two scenarios for the penetration of relativistically intense laser radiation into an overdense plas...
The nature of how light interacts with plasma is fundamentally altered when the bulk of the electron...
The interaction of a strong electromagnetic wave with a layer of overdense plasma is considered unde...
Relativistic flying mirrors in plasmas are realized as thin dense electron (or electron–ion) layers ...
In this paper, we apply an analytical model [V.V. Kulagin et al., Phys. Plasmas 14, 113101 (2007)] t...
Interaction of a high-power laser pulse having a sharp front with a thin plasma layer is considered....
We report on the realistic scheme of intense X-rays and γ-radiation generation in a laser interactio...
Generation of petawatt-class pulses with a nearly single-cycle duration or with a strongly asymmetri...
The nonlinear interaction of an ultraintense laser pulse with a thin foil modifies the shape, the fr...
An analytical description of the interaction of laser light with a foil, described as a thin slab of...
This thesis presents experimental and simulation results of the properties of the reflected and tran...
The dynamics of the plasma critical density surface in an ultra-thin foil target irradiated by an ul...
The collective response of electrons in an ultrathin foil target irradiated by an ultraintense (~6x1...
The up-shifting and longitudinal compression of electromagnetic waves has been shown possible with r...
This thesis was previously held under moratorium from 26th May 2021 until 26th May 2023.This thesis ...
Two scenarios for the penetration of relativistically intense laser radiation into an overdense plas...
The nature of how light interacts with plasma is fundamentally altered when the bulk of the electron...
The interaction of a strong electromagnetic wave with a layer of overdense plasma is considered unde...
Relativistic flying mirrors in plasmas are realized as thin dense electron (or electron–ion) layers ...
In this paper, we apply an analytical model [V.V. Kulagin et al., Phys. Plasmas 14, 113101 (2007)] t...