Direct acceleration of an electron in infinite vacuum by a pulsed radially-polarized laser beam
arXiv:1311.5792 · doi:10.1364/OE.18.025035
Abstract
We study the direct acceleration of a free electron in infinite vacuum along the axis of a pulsed radially-polarized laser beam. We find that net energy transfer from laser pulse to electron is maximized with the tightest focusing. We show that the net energy gain of an electron initially moving at a relativistic velocity may exceed more than half the theoretical limit of energy transfer, which is not possible with an initially stationary electron in the parameter space studied. We determine and analyze the power scaling of maximum energy gain, extending our study to include a relatively unexplored regime of low powers and revealing that substantial acceleration is already possible without the use of petawatt peak-power laser technology.
17 pages, 10 figures
Cited by in corpus (15)
- Direct laser acceleration of electrons in free-space
- Laser-Induced Linear Electron Acceleration in Free Space
- Electron acceleration driven by ultrashort and nonparaxial radially polarized laser pulses
- Relativistic acceleration of electrons injected by a plasma mirror into a radially polarized laser beam
- On the validity of the paraxial approximation for electron acceleration with radially polarized laser beams
- On the importance of frequency-dependent beam parameters for vacuum acceleration with few-cycle radially-polarized laser beams
- Vacuum laser acceleration of super-ponderomotive electrons using relativistic transparency injection
- Influence of longitudinal chromatism on vacuum acceleration by intense radially polarized laser beams
- Focused fields of ultrashort radially-polarized laser pulses having low-order spatio-temporal couplings
- Electron acceleration in direct laser-solid interactions far beyond the ponderomotive limit
- Two-Color-Laser-Driven Direct Electron Acceleration in Infinite Vacuum
- On beam models and their paraxial approximation
- A Threshold for Laser-Driven Linear Particle Acceleration in Unbounded Vacuum
- Transverse Confinement of Electron Beams in a 2D Optical Lattice for Compact Coherent X-Ray Sources
- Electromagnetic fields of an ultra-short tightly-focused radially-polarized laser pulse