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April 24, 2026Nature4 citationsOpen Access

Efficiency-optimized relativistic plasma harmonics for extreme fields

RTRobin TimmisCFC. R. J. FitzpatrickJKJ. P. Kennedy

Key Points

  • The aim is to optimize harmonic radiation generation from relativistically oscillating laser plasmas for higher conversion efficiencies.
  • Tailored temporal profile adjustment of the driving laser on sub-picosecond timescales
  • Measurement of harmonic energies between the 12th and 47th harmonics
  • Comparison with theoretical predictions for efficiency based on harmonic order.
  • Observed harmonic energies exceeding 9 mJ between the 12th and 47th harmonics
  • Achieved strong agreement with theoretical efficiency predictions
  • Opened avenues for achieving extreme optical field strengths near the Schwinger limit.

Abstract

Abstract Bright harmonic radiation from relativistically oscillating laser plasmas offers a direct route for generating extreme electromagnetic fields. Theory predicts that under optimized conditions, the plasma medium can support strong spatiotemporal compression of laser energy in a coherent harmonic focus (CHF), delivering intensity boosts many orders of magnitude greater than the incident driving laser pulse 1–4 . Although diffraction-limited performance 5 (spatial compression) and attosecond phase locking 6–8 (temporal compression) have been demonstrated experimentally, efficient coupling of relativistically intense laser pulse energy into the emitted harmonic cone has not been realized so far. Here we demonstrate that this highly nonlinear interaction can be tailored to deliver the maximum conversion efficiencies predicted from simulations. By fine-tuning the temporal profile of the driving laser on sub-picosecond (9 mJ between the 12th and 47th harmonics are observed. These results are in agreement with the theoretically expected efficiency dependence on harmonic order, verifying that optimal conditions have been achieved in the generation process. This is the important final element required to achieve the expected intensity boosts from a CHF in experiments. Although obtaining spatiotemporal compression and optimal efficiency simultaneously remains challenging, the path to realizing extreme optical field strengths approaching the critical field of quantum electrodynamics (the Schwinger limit at >10 1 6 V cm −1 or >10 29 W cm −2 ) is now open, permitting all-optical studies of the quantum vacuum and new frontiers for intense attosecond science.

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Cite This Study

Timmis et al. (2026) studied this question.

synapsesocial.com/papers/69eb0aeb553a5433e34b4da7https://doi.org/10.1038/s41586-026-10400-2
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