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20 mJ, 1 ps Yb:YAG Thin-disk Regenerative Amplifier
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Generation of 9 MeV γ-rays by all-laser-driven Compton scattering with second-harmonic laser light.

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    High-energy gamma-ray photons were generated using inverse Compton scattering of laser light off electron beams. A novel laser system independently optimized two laser pulses for enhanced gamma-ray production and beam focusing.

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    Area of Science:

    • High-energy physics
    • Laser-driven particle acceleration
    • Photonics

    Background:

    • Inverse Compton scattering (ICS) is a key mechanism for generating high-energy photons.
    • Laser-wakefield acceleration (LWFA) provides relativistic electron beams for ICS.
    • Optimizing laser parameters is crucial for efficient ICS photon production.

    Purpose of the Study:

    • To develop a novel laser system for independently optimizing two laser pulses for ICS gamma-ray generation.
    • To mitigate detrimental effects on electron beam focusing in nonlinear optics.
    • To achieve efficient production of gamma-ray photons with energy exceeding 9 MeV.

    Main Methods:

    • Utilized a single laser system to generate two distinct laser pulses.
    • One pulse was used for laser-wakefield acceleration of electrons (~450 MeV).
    • The second pulse (3 eV) was inverse Compton scattered off the electron beam to produce gamma rays (>9 MeV).
    • Independently optimized optical properties of both laser pulses.
    • Mitigated nonlinear optical effects impacting beam focusing.

    Main Results:

    • Successfully produced gamma-ray photons with energies greater than 9 MeV.
    • Demonstrated independent optimization of laser pulses for electron acceleration and scattering.
    • Minimized deleterious effects on electron beam focusing associated with high-peak-power nonlinear optics.
    • Achieved efficient gamma-ray generation through optimized ICS.

    Conclusions:

    • A novel, dual-pulse laser system enables independent optimization for enhanced gamma-ray production via ICS.
    • This approach improves control over the ICS process and mitigates beam degradation.
    • The developed method offers a pathway for efficient generation of high-energy photons for scientific applications.