Backward-propagating MeV electrons from W/cm laser interactions with water
arXiv:1501.02261 · doi:10.1063/1.4916493
Abstract
We present an experimental study of the generation of MeV electrons opposite to the direction of laser propagation following the relativistic interaction at normal incidence of a 3 mJ, W/cm short pulse laser with a flowing 30 m diameter water column target. Faraday cup measurements record hundreds of pC charge accelerated to energies exceeding 120 keV, and energy-resolved measurements of secondary x-ray emissions reveal an x-ray spectrum peaking above 800 keV, which is significantly higher energy than previous studies with similar experimental conditions and more than five times the 110 keV ponderomotive energy scale for the laser. We show that the energetic x-rays generated in the experiment result from backward-going, high-energy electrons interacting with the focusing optic and vacuum chamber walls with only a small component of x-ray emission emerging from the target itself. We also demonstrate that the high energy radiation can be suppressed through the attenuation of the nanosecond-scale pre-pulse. These results are supported by 2D Particle-in-Cell (PIC) simulations of the laser-plasma interaction that exhibit beam-like backward-propagating MeV electrons.
Substantial additions to Section III: Simulations. 6 figures; Comments welcome!
References in corpus (4)
- Nonlinear Compton scattering in ultra-short laser pulses
- The Effects of Front-Surface Target Structures on Properties of Relativistic Laser-Plasma Electrons
- A Novel Femtosecond-Gated, High-Resolution, Frequency-Shifted Shearing Interferometry Technique for Probing Pre-Plasma Expansion in Ultra-Intense Laser Experiments
- Backward-Propagating MeV Electrons in Ultra-Intense Laser Interactions: Standing Wave Acceleration and Coupling to the Reflected Laser Pulse
Cited by in corpus (4)
- Kinetic and finite ion mass effects on the transition to relativistic self-induced transparency in laser-driven ion acceleration
- 3D PIC simulations of electron beams created via reflection of intense laser light from a water target
- Particle-in-Cell Simulations of Density Peak Formation and Ion Acceleration from Short Pulse Laser-Driven Ponderomotive Steepening
- Particle-in-Cell modeling of a potential demonstration experiment for double pulse enhanced target normal sheath acceleration