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Published on: January 28, 2021
Stable and tunable MeV γ-ray generation via dual-laser inverse Thomson scattering from a laser-plasma accelerator
Hai-En Tsai1, Tobias M Ostermayr2, Robert E Jacob2,3
1Lawrence Berkeley National Laboratory, BELLA Center, Berkeley, 94720, CA, USA. haientsai@lbl.gov.
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Inverse Thomson scattering from laser-plasma accelerators offers a pathway to compact, tunable MeV γ-ray sources for reduced-dose radiography and enhanced performance in nuclear resonance fluorescence (NRF)-based isotope identification. However, photon yield and spectral quality are often limited by constraints on interaction geometry and scatter-laser tunability. Here we demonstrate a MeV γ-ray source based on a dual-laser inverse Thomson scattering configuration driven by a 100-TW laser-plasma accelerator. Electron beams tunable from 122 to 204 MeV with [Formula: see text] mrad divergence and [Formula: see text] mrad pointing stability generate γ rays with peak energies from 276 keV to 1.2 MeV and yields up to [Formula: see text] photons per shot. By independently controlling the interaction position and the scatter-pulse duration, we experimentally match the scatter pulse to the walk-off-limited interaction length. Extending the scatter pulse to 200 fs increases photon production by approximately [Formula: see text] while maintaining operation in the linear Thomson regime, thereby preserving narrow spectral bandwidth and controlled radiation divergence. Radiographic characterization demonstrates MeV-level penetration and [Formula: see text] mm spatial resolution, while stable operation is sustained over multi-hour timescales across multiple days. These results show that interaction-length optimization provides a scalable strategy for improving photon yield, spectral control, and operational stability in compact laser-plasma-accelerator-driven γ-ray sources.

