Creating pair plasmas with observable collective effects
arXiv:2402.07840 · doi:10.1088/1361-6587/acb080
Abstract
Although existing technology cannot yet directly produce fields at the Schwinger level, experimental facilities can already explore strong-field QED phenomena by taking advantage of the Lorentz boost of energetic electron beams. Recent studies show that QED cascades can create electron-positron pairs at sufficiently high density to exhibit collective plasma effects. Signatures of the collective pair plasma effects can appear in exquisite detail through plasma-induced frequency upshifts and chirps in the laser spectrum. Maximizing the magnitude of the QED plasma signature demands high pair density and low pair energy, which suits the configuration of colliding an over energy-density electron beam with a intensity laser pulse. The collision creates pairs that have a large plasma frequency, made even larger as they slow down or reverse direction due to both the radiation reaction and laser pressure. This paper explains at a tutorial level the key properties of the QED cascades and laser frequency upshift, and at the same time finds the minimum parameters that can be used to produce observable QED plasma.
10 pages, 3 figures
References in corpus (7)
- The Physical Mechanisms of Fast Radio Bursts
- Quantum radiation reaction in laser-electron beam collisions
- Pair Creation in QED-Strong Pulsed Laser Fields Interacting with Electron Beams
- Electrodynamics of pulsar magnetospheres
- Scaling laws for positron production in laser--electron-beam collisions
- On Seminal HEDP Research Opportunities Enabled by Colocating Multi-Petawatt Laser with High-Density Electron Beams
- Extreme Plasma Astrophysics