High harmonic generation with long-wavelength few-cycle laser pulses

We report the extension of hollow-core fibre pulse compression to longer wavelengths. High-energy multi-cycle infrared pulses are generated via optical parametric amplification and subsequently broadened in the fibre. 2.5-cycle pulses at the Signal wavelength (1.4 mu m) and 1.6-cycle pulses at the I...

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Veröffentlicht in:Journal of physics. B, Atomic, molecular, and optical physics Atomic, molecular, and optical physics, 2012-04, Vol.45 (7), p.74008-1-9
Hauptverfasser: Schmidt, Bruno E, Shiner, Andrew D, Giguère, Mathieu, Lassonde, Philippe, Trallero-Herrero, Carlos A, Kieffer, J-C, Corkum, P B, Villeneuve, D M, Légaré, François
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Sprache:eng
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Zusammenfassung:We report the extension of hollow-core fibre pulse compression to longer wavelengths. High-energy multi-cycle infrared pulses are generated via optical parametric amplification and subsequently broadened in the fibre. 2.5-cycle pulses at the Signal wavelength (1.4 mu m) and 1.6-cycle pulses at the Idler wavelength (1.8 mu m) in the sub-millijoule regime have been generated. New compression schemes can be applied at 1.8 mu m and beyond. In this manner, 1.6-cycle carrier envelope phase stable pulses were generated by linear propagation in the anomalous dispersion regime of bulk glass which surprisingly enables compression below its third-order dispersion limit. Furthermore, a dispersion-free way of controlling the carrier envelope phase is demonstrated. Moreover, we experimentally confirm the increase in high-harmonic cut-off energy with driving laser wavelength and demonstrate the beneficial effect of few-cycle pulses which enable higher saturation intensities on target compared to multi-cycle pulses. It will be an ideal tool for future synthesis of isolated attosecond pulses in the sub-keV regime. With this laser source, we revealed for the first time multi-electron effects in high harmonic generation in xenon.
ISSN:0953-4075
1361-6455
DOI:10.1088/0953-4075/45/7/074008