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Reducing the carrier-envelope-phase-dependence of high-harmonic-generation by vectorial-time-polarization-gating.

Created on 01 Aug 2026

Authors

Eran Ben-Arosh, Eldar Ragonis, Lev Merensky, Avner Fleischer

Published in

Optics letters. Volume 51. Issue 15. Pages 4096-4099. Aug 01, 2026.

Abstract

A well-known shortcoming of High Harmonic Generation (HHG) is the strong dependence of the broadband HHG spectra (HGS) on the carrier envelope phase (CEP) of the driver. Here, we numerically show that compared to the current well-established scalar (linearly polarized) schemes for generating broadband HGS, namely a short driver [Amplitude gating (AG)], Polarization-Gating (PG), or Time-Gating (TG), the vectorial driver of the Vectorial-Time-Polarization-Gating (VTPG) scheme renders the cutoff HGS much less sensitive to the CEP of the driver. The polarization state (helicity) of the emitted radiation is likewise CEP-resilient. Unlike scalar schemes, where the number of recollisions heavily depends on the CEP, in VTPG the CEP keeps this number almost unchanged and only controls the partitioning of the recollisions between two orthogonal directions. This reduces the CEP dependence of the HGS and decreases the spectral modulations. The CEP-resilience of the VTPG scheme holds promise for a variety of applications in attosecond science benefiting from quasi-continuous, helical HHG sources liberated from the necessity to stabilize the CEP of the laser.

PMID:
42537122
Bibliographic data and abstract were imported from PubMed on 01 Aug 2026.

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