Spectral modification of shock accelerated ions using hydrodynamically shaped gas target
arXiv:1503.06180 · doi:10.1103/PhysRevLett.115.094802
Abstract
We report on reproducible shock acceleration from irradiation of a m CO laser on optically shaped H and He gas targets. A low energy laser prepulse () was used to drive a blast wave inside the gas target, creating a steepened, variable density gradient. This was followed, after 25 ns, by a high intensity laser pulse () that produces an electrostatic collisionless shock. Upstream ions were accelerated for a narrow range of prepulse energies ( mJ & mJ). For long density gradients (m), broadband beams of He and H were routinely produced, whilst for shorter gradients (m), quasimonoenergetic acceleration of proton was observed. These measurements indicate that the properties of the accelerating shock and the resultant ion energy distribution, in particular the production of narrow energy spread beams, is highly dependent on the plasma density profile. These findings are corroborated by 2D PIC simulations.
References in corpus (1)
Cited by in corpus (11)
- Collisionless shock acceleration of narrow energy spread ion beams from mixed species plasmas using 1 m lasers
- Vlasov simulation of laser-driven shock acceleration and ion turbulence
- Over-critical sharp-gradient plasma slab produced by the collision of laser-induced blast-waves in a gas jet; Application to high-energy proton acceleration
- A Review of Laser-Plasma Ion Acceleration
- Collisionless electrostatic shock formation and ion acceleration in intense laser interactions with near critical density plasmas
- Ion acceleration in electrostatic collisionless shock: on the optimal density profile for quasi-monoenergetic beams
- Ion acceleration at two collisionless shocks in a multicomponent plasma
- Collisionless shock acceleration in the corona of an inertial confinement fusion pellet with possible application to ion fast ignition
- Identification of electrostatic two-stream instabilities associated with a laser-driven collisionless shock in a multicomponent plasma
- Spectrally peaked proton beams shock accelerated from an optically shaped overdense gas jet by a near-infrared laser
- Laser-driven ion acceleration in long-lived optically shaped gaseous targets enhanced by magnetic vortices