Pulse Compression of Ultrashort UV Pulses by Self-Phase Modulation in Bulk Material

The bandwidth of ultrafast pulses in the UV is limited by the finite acceptance bandwidth of the nonlinear crystals used for their generation. For fundamental laser pulses it is well established that spectral broadening can be used to overcome intrinsic bandwidth limits. We show that self-phase modu...

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Main Authors: Eberhard Riedle, Nils Krebs, Igor Pugliesi
Format: Article
Language:English
Published: MDPI AG 2013-02-01
Series:Applied Sciences
Subjects:
UV
Online Access:http://www.mdpi.com/2076-3417/3/1/153
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spelling doaj-4983e024185e4757952e4abf546860d92020-11-24T23:58:53ZengMDPI AGApplied Sciences2076-34172013-02-013115316710.3390/app3010153Pulse Compression of Ultrashort UV Pulses by Self-Phase Modulation in Bulk MaterialEberhard RiedleNils KrebsIgor PugliesiThe bandwidth of ultrafast pulses in the UV is limited by the finite acceptance bandwidth of the nonlinear crystals used for their generation. For fundamental laser pulses it is well established that spectral broadening can be used to overcome intrinsic bandwidth limits. We show that self-phase modulation of UV pulses in bulk materials leads to large spectral broadening and allows for a significant reduction of the pulse duration. We find that for pulse energies in the range of a few μJ, a thin crystal is favorable due to the strong dispersion in the UV and the limitations set by self-focusing. In contrast to spectral broadening in gaseous media, the self-focus has to lie outside the crystal to avoid beam break up. We focus UV pulses into a 1 mm thick CaF2 crystal. For moderately short input pulses, a shortening factor up to 2.4 is achieved: the 120 fs long third harmonic output of a Ti:sapphire amplifier is compressed down to 50 fs FWHM. For a central wavelength of 315 nm, we generate pulses as short as 14.9 fs after compression with an UV pulse shaper. In both cases the resulting beam shape is close to Gaussian and fully usable for spectroscopic experiments. We use the pulses in a collinear 2D-UV experiment and clearly resolve vibronic off-diagonal peaks of the S2 1B2u vibronic progression of pyrene.http://www.mdpi.com/2076-3417/3/1/153ultrashort optical pulsesultravioletUVself-phase modulationpulse compression
collection DOAJ
language English
format Article
sources DOAJ
author Eberhard Riedle
Nils Krebs
Igor Pugliesi
spellingShingle Eberhard Riedle
Nils Krebs
Igor Pugliesi
Pulse Compression of Ultrashort UV Pulses by Self-Phase Modulation in Bulk Material
Applied Sciences
ultrashort optical pulses
ultraviolet
UV
self-phase modulation
pulse compression
author_facet Eberhard Riedle
Nils Krebs
Igor Pugliesi
author_sort Eberhard Riedle
title Pulse Compression of Ultrashort UV Pulses by Self-Phase Modulation in Bulk Material
title_short Pulse Compression of Ultrashort UV Pulses by Self-Phase Modulation in Bulk Material
title_full Pulse Compression of Ultrashort UV Pulses by Self-Phase Modulation in Bulk Material
title_fullStr Pulse Compression of Ultrashort UV Pulses by Self-Phase Modulation in Bulk Material
title_full_unstemmed Pulse Compression of Ultrashort UV Pulses by Self-Phase Modulation in Bulk Material
title_sort pulse compression of ultrashort uv pulses by self-phase modulation in bulk material
publisher MDPI AG
series Applied Sciences
issn 2076-3417
publishDate 2013-02-01
description The bandwidth of ultrafast pulses in the UV is limited by the finite acceptance bandwidth of the nonlinear crystals used for their generation. For fundamental laser pulses it is well established that spectral broadening can be used to overcome intrinsic bandwidth limits. We show that self-phase modulation of UV pulses in bulk materials leads to large spectral broadening and allows for a significant reduction of the pulse duration. We find that for pulse energies in the range of a few μJ, a thin crystal is favorable due to the strong dispersion in the UV and the limitations set by self-focusing. In contrast to spectral broadening in gaseous media, the self-focus has to lie outside the crystal to avoid beam break up. We focus UV pulses into a 1 mm thick CaF2 crystal. For moderately short input pulses, a shortening factor up to 2.4 is achieved: the 120 fs long third harmonic output of a Ti:sapphire amplifier is compressed down to 50 fs FWHM. For a central wavelength of 315 nm, we generate pulses as short as 14.9 fs after compression with an UV pulse shaper. In both cases the resulting beam shape is close to Gaussian and fully usable for spectroscopic experiments. We use the pulses in a collinear 2D-UV experiment and clearly resolve vibronic off-diagonal peaks of the S2 1B2u vibronic progression of pyrene.
topic ultrashort optical pulses
ultraviolet
UV
self-phase modulation
pulse compression
url http://www.mdpi.com/2076-3417/3/1/153
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AT nilskrebs pulsecompressionofultrashortuvpulsesbyselfphasemodulationinbulkmaterial
AT igorpugliesi pulsecompressionofultrashortuvpulsesbyselfphasemodulationinbulkmaterial
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