Experimental observation of nonlinear Thomson scattering
arXiv:physics/9810036 · doi:10.1038/25303
Abstract
A century ago, J. J. Thomson showed that the scattering of low-intensity light by electrons was a linear process (i.e., the scattered light frequency was identical to that of the incident light) and that light's magnetic field played no role. Today, with the recent invention of ultra-high-peak-power lasers it is now possible to create a sufficient photon density to study Thomson scattering in the relativistic regime. With increasing light intensity, electrons quiver during the scattering process with increasing velocity, approaching the speed of light when the laser intensity approaches 10^18 W/cm^2. In this limit, the effect of light's magnetic field on electron motion should become comparable to that of its electric field, and the electron mass should increase because of the relativistic correction. Consequently, electrons in such high fields are predicted to quiver nonlinearly, moving in figure-eight patterns, rather than in straight lines, and thus to radiate photons at harmonics of the frequency of the incident laser light, with each harmonic having its own unique angular distribution. In this letter, we report the first ever direct experimental confirmation of these predictions, a topic that has previously been referred to as nonlinear Thomson scattering. Extension of these results to coherent relativistic harmonic generation may eventually lead to novel table-top x-ray sources.
including 4 figures
Cited by in corpus (38)
- Extremely high-intensity laser interactions with fundamental quantum systems
- Femtosecond x rays from laser-plasma accelerators
- Light-matter interactions with photonic quasiparticles
- Charged particle motion and radiation in strong electromagnetic fields
- Nonlinear Compton scattering in ultra-short laser pulses
- Non-Linear Compton Scattering of Ultrashort and Ultraintense Laser Pulses
- Signatures of High-Intensity Compton Scattering
- Beam-Shape Effects in Nonlinear Compton and Thomson Scattering
- Relativistic Tennis with Photons: Demonstration of Frequency Upshifting by a Relativistic Flying Mirror through Two Colliding Laser Pulses
- Testing numerical implementations of strong field electrodynamics
- The intensity dependent mass shift: existence, universality and detection
- The locally monochromatic approximation to QED in intense laser fields
- Quantum quenching of radiation losses in short laser pulses
- Soft X-ray harmonic comb from relativistic electron spikes
- Dynamics of multiply charged ions in intense laser fields
- Analysis of four-wave mixing of high-power lasers for the detection of elastic photon-photon scattering
- Asymmetries of azimuthal photon distributions in non-linear Compton scattering in ultra-short intense laser pulses
- Photo-Emission of a Single-Electron Wave-Packet in a Strong Laser Field
- High power gamma flare generation in multi-petawatt laser interaction with tailored targets
- Nonlinear Thomson scattering with ponderomotive control
- Towards an in situ, full-power gauge of the focal-volume intensity of petawatt-class lasers
- X-ray harmonic comb from relativistic electron spikes
- Nonlinear Compton scattering of an ultra-intense laser pulse in a plasma
- Inverse Compton scattering from solid targets irradiated by ultra-short laser pulses in the regime
- Fast radio bursts as strong waves interacting with ambient medium
- Self-induced mode mixing of ultraintense lasers in vacuum
- Proof-of-principle experiment for nanoparticle-assisted laser wakefield acceleration
- Electron energy increase in a laser wakefield accelerator using longitudinally shaped plasma density profiles
- Laser assisted Compton scattering of X-ray photons
- Radiation spectra of laser-driven quantum relativistic electrons
- Plasma wave undulator for laser-accelerated electrons
- Realising Single-Shot Measurements of Quantum Radiation Reaction in High-Intensity Lasers
- Laser intensity effects in noncommutative QED
- Ionization states for the multi-petawatt laser-QED regime
- Measuring Extreme Vacuum Pressure with Ultra-Intense Lasers
- Optimized photonic gauge of extreme high vacuum with Petawatt lasers
- Polarization in caustic-crossing binary microlensing events
- Causal Classical Theory of Radiation Damping