High Power Laser Science and Engineering, Volume. 9, Issue 1, 010000e6(2021)
Reflecting petawatt lasers off relativistic plasma mirrors: a realistic path to the Schwinger limit Editors' Pick , EIC Choice Award
Fig. 1. Sketch of principle of a CRM boosting the
Fig. 2. Physics of plasma mirrors. (a) Plasma mirrors specularly reflect an incident ultraintense laser beam. At ultrahigh intensities, this laser field ((b), field
Fig. 3. Raw image of an experimental harmonic spectrum (orders ≈10 (left) to 40 (right)) generated upon reflection of the UHI 100 TW laser (CEA Saclay) on a relativistic plasma mirror.
Fig. 4. Measured temporal intensity profile of the attosecond pulses produced by the ROM mechanism (superposition of harmonic orders 9 to 14). From Ref. [53].
Fig. 5. Principle of intensity boosting using a p-CRM. The plasma surface curvature is induced either by radiation pressure, or by more demanding schemes such as preshaped solid targets (e.g., micro-off-axis parabolas).
Fig. 6. (a) Spectral and (b)–(d) temporal effects of the reflection of an ultraintense laser field on a p-CRM, from PIC simulations. The spectral rectification effect is highlighted in (a), by comparing the harmonic spectrum right after the p-CRM (black) and at the p-CRM focus (red). (b)–(d) Comparison of the waveforms of the incident field (b), of the field right after reflection from the p-CRM (c) and of the field right at the centre of the p-CRM focus (d). The strong difference between (c) and (d) is due to the spectral rectification effect evidenced in (a). All fields are plotted in units of the Schwinger field
Fig. 7. Light intensity as a function of peak power
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Fabien Quéré, Henri Vincenti. Reflecting petawatt lasers off relativistic plasma mirrors: a realistic path to the Schwinger limit[J]. High Power Laser Science and Engineering, 2021, 9(1): 010000e6
Category: Research Articles
Received: Nov. 8, 2020
Accepted: Nov. 18, 2020
Published Online: Feb. 8, 2021
The Author Email: Fabien Quéré (fabien.quere@cea.fr), Henri Vincenti (henri.vincenti@cea.fr)