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Updated: Feb 5, 2026

Femtosecond Laser Filaments for Use in Sub-Diffraction-Limited Imaging and Remote Sensing
Published on: April 25, 2019
Stable femtosecond X-rays with tunable polarization from a laser-driven accelerator
Andreas Döpp1,2, Benoit Mahieu1, Agustin Lifschitz1
1Laboratoire d'Optique Appliquée, ENSTA, CNRS UMR7639, Ecole Polytechnique, Chemin de la Hunière, 91761 Palaiseau, France.
Researchers have developed a stable and controllable method for producing tunable, polarized X-ray beams using laser-driven electron acceleration. This breakthrough enhances the reliability and usability of compact X-ray sources for advanced applications.
Area of Science:
- Physics
- Laser-driven particle acceleration
- X-ray generation
Background:
- High-peak-power lasers enable compact, intense radiation sources.
- Laser wakefield acceleration produces X-rays via electron oscillation (betatron radiation).
- Existing betatron sources suffer from poor control and stability, limiting applications.
Purpose of the Study:
- To demonstrate reliable production of X-ray beams with tunable polarization.
- To improve the control and stability of betatron X-ray sources.
Main Methods:
- Utilizing ionization-induced injection in a gas mixture to control electron orbits.
- Employing high-peak-power lasers to drive electron acceleration and X-ray emission.
Main Results:
- Achieved reproducible electron orbits, leading to reduced signal and beam profile fluctuations.
- Demonstrated significantly improved beam pointing stability (variation < 1/10th of divergence).
- Obtained X-ray beams with a polarization ratio up to 80%, with easily rotatable polarization axis.
Conclusions:
- Reliable and controllable production of polarized X-ray beams from laser-driven betatron sources is now possible.
- Enhanced stability and tunable polarization open new avenues for innovative applications.
- This advancement promises broad impact across various scientific and technological fields.
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