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Titlebook: Ultrafast Optics IV; Selected Contributio Ferenc Krausz,Georg Korn,Ian A. Walmsley Book 2004 Springer Science+Business Media New York 2004

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Ultrafast Optics IV978-0-387-34756-1Series ISSN 0342-4111 Series E-ISSN 1556-1534
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Novel 10- to 40-GHz Telecom Pulse Generating Sources with High Average Power improves system signal-to-noise and allows further scaling to higher repetition rates through optical time-division multiplexing (OTDM). Apart from the transmitter side, there are interesting applications of pulsed lasers also in the receivers of transmission systems, e.g. for demultiplexing and cl
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Single-Cycle Optical Pulses Produced by Coherent Molecular Oscillationsllation, applying a tightly focused train of perfectly timed pulses, adjusting the delay, and studying electronic properties as functions of molecular coordinates. In the future, this Raman source may also produce sub-cycle optical pulses, and allow synthesis of waveforms where the electric field is
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Broadband Phase-Coherent Optical Frequency Synthesis With Actively Linked Ti:Sapphire and Cr:Forsteredia has recently been demonstrated. Here, we use a Ti:sapphire laser and a Cr:forsterite laser to extend this approach and additionally equalize the rate at which the carrier-waves move underneath their pulse envelopes. In other words, we link the absolute position of the two frequency combs, there
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Synthesis of Optical Frequencies and Ultrastable Femtosecond Pulse Trains from an Optical Reference ing jitter in their pulse trains can be on the order of 1 femtosecond in a 100 kHz bandwidth. It is important to distinguish this technique from previous work where a femtosecond laser has been stabilized to a microwave standard [3,4] or another femtosecond laser [5]. Furthermore, we extract highly
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Generation of 14.8-fs Pulses in a Spatially Dispersive Amplifier] employs a spatially dispersed seed beam inside an amplifier to decouple the amplification of competing wavelengths from each other. With this an artificial inhomogeneous broadening is induced in the Ti:sapphire, which is normally homogeneously broadenend, which makes it possible to tailor the gain
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