Non-Linear Compton Scattering in a Strong Rotating Electric Field
arXiv:1606.00476 · doi:10.1103/PhysRevA.94.062105
Abstract
The non-linear Compton scattering rate in a rotating electric field is explicitly calculated for the first time. For this purpose, a novel solution to the Klein-Gordon equation in the presence of a rotating electric field is applied. An analytical expression for the emission rate is obtained, as well as a simplified approximation adequate for emplementation in kinetic codes. The spectrum is numerically calculated for nowadays optical and X-ray laser parameters. The results are compared to the standard Volkov-Ritus rate for a particle in a plane wave, which is commonly assumed to be valid for a rotating electric field under certain conditions. Subsequent deviations between the two models, both in the radiated power and the spectral shape, are demonstrated. First, the typical number of photons participating in the scattering process is much smaller compared to the Volkov-Ritus rate, resulting in up to an order of magnitude lower emitted power. Furthermore, our model predicts a discrete harmonics spectrum for electrons with low asymptotic momentum compared to the field amplitude. This discrete structure is a clear imprint of the electric field frequency, as opposed to the Volkov-Ritus rate which reduces to the constant crossed field rate for the physical conditions under consideration. Our model predictions can be tested with present-days laser facilities.
17 pages, 9 figures
References in corpus (8)
- QED cascades induced by circularly polarized laser fields
- Nonlinear Compton scattering in ultra-short laser pulses
- Pair Creation in QED-Strong Pulsed Laser Fields Interacting with Electron Beams
- Trident pair production in strong laser pulses
- Classical and quantum particle dynamics in univariate background fields
- A Novel Solution to the Klein-Gordon Equation in the Presence of a Strong Rotating Electric Field
- Quantum processes in short and intensive electromagnetic fields
- Analytical solution for Klein-Gordon equation and action function of the solution for Dirac equation in counter-propagating laser waves
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- Electron spin filter and polarizer in a standing light wave
- Semi-classical limitations for photon emission in strong external fields
- Nonlinear QED in an ultrastrong rotating electric field: Signatures of the momentum-dependent effective mass
- Electromagnetic propagation in a relativistic electron gas at finite temperatures
- Tachyonic and parametric resonances for massive particle production in an intense plane wave background
- Beyond Volkov: Solving the Second-Order Klein-Gordon Equation