Shaping Ultrafast Pulses for Enhanced Resonant Nonlinear Interactions
Omri Meron, Snir Nehemia, Uri Arieli, Haim Suchowski

TL;DR
This paper demonstrates how spectral phase shaping of ultrafast pulses can significantly enhance resonant nonlinear interactions, especially high-order harmonic generation, by compensating dispersion or inducing constructive interference.
Contribution
It reveals two distinct enhancement regimes using arctangent spectral-phase pulses in resonant systems, supported by theoretical analysis and scaling predictions.
Findings
Two enhancement regimes identified: dispersion compensation and antisymmetric polarization induction.
Both mechanisms scale exponentially with harmonic order, enabling high-efficiency harmonic generation.
Theoretical insights explain physical origins of the enhancement effects.
Abstract
Coherent control with shaped ultrafast pulses is a powerful approach for steering nonlinear light-matter interactions. Previous studies in quantum control have shown that, beyond transform-limited pulses, those with antisymmetric spectral phases can drive nonresonant multiphoton transitions with comparable efficiency. However, in resonant multiphoton transitions, the material's spectral-phase response introduces dispersion that degrades nonlinear efficiency. Pre-shaping the pulse to compensate for the material's impulse response can restore and enhance nonlinear interactions beyond the transform-limited case. Yet, is this the only spectral phase that can yield such enhancement? Here, we study sub-10 fs single-pulse four-wave mixing in resonant plasmonic nanostructures using arctangent spectral-phase-shaped pulses. We uncover two distinct enhancement regimes: one compensating for…
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Taxonomy
TopicsStrong Light-Matter Interactions · Plasmonic and Surface Plasmon Research · Laser-Matter Interactions and Applications
