Studies of relativistic wave–particle interactions in plasma-based collective accelerators
- 1 September 1990
- journal article
- research article
- Published by Cambridge University Press (CUP) in Laser and Particle Beams
- Vol. 8 (3) , 427-449
- https://doi.org/10.1017/s0263034600008673
Abstract
The interaction of externally injected charged particles (electrons) with plasma waves moving with a phase velocity that is very close to the speed of light is examined. Such plasma waves form the basis of at least three collective accelerator schemes: the plasma beat wave accelerator (PBWA), the plasma wake-field accelerator (PWFA), and the laser wake-field accelerator (LWFA). First, the electron trapping threshold, energy gain and acceleration length are examined using a 1-D model. This model elucidates how the final energies of the injected test electrons depend upon their injection and extraction phases and phase slippage. Phase energy diagrams are shown to be extremely useful in visualizing wave-particle interactions in 1-D. Second, we examine, using a two-dimensional model, the effects of radial electric fields on focusing or defocusing the injected particles depending upon their radial positions and phases in the relativistically moving potential well. Finally, we extend the model to 3-D so that the effect of injected particles' emittance on the acceleration process may be determined. This simple 3-D model will be extremely useful in predicting the electron energy spectra of several current experiments designed to demonstrate ultrahigh gradient acceleration of externally injected test particles by relativistic plasma waves.Keywords
This publication has 11 references indexed in Scilit:
- Plasma Particle AcceleratorsScientific American, 1989
- Laser wakefield acceleration and relativistic optical guidingApplied Physics Letters, 1988
- Experimental Observation of Plasma Wake-Field AccelerationPhysical Review Letters, 1988
- Generation of radial fields in the beat-wave accelerator for Gaussian pump profilesPhysical Review A, 1986
- Physical mechanisms in the plasma wake-field acceleratorPhysical Review A, 1986
- Relativistic Plasma-Wave Excitation by Collinear Optical MixingPhysical Review Letters, 1985
- Acceleration of Electrons by the Interaction of a Bunched Electron Beam with a PlasmaPhysical Review Letters, 1985
- Two-Dimensional Simulations of Single-Frequency and Beat-Wave Laser-Plasma HeatingPhysical Review Letters, 1985
- Ultrahigh gradient particle acceleration by intense laser-driven plasma density wavesNature, 1984
- Laser Electron AcceleratorPhysical Review Letters, 1979