Phase-dependent spectral control of pulsed modulation instability via dichromatic seed fields

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  • Westfälische Wilhelms-Universität Münster (WWU)
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OriginalspracheEnglisch
Seiten (von - bis)763-769
Seitenumfang7
FachzeitschriftApplied Physics B: Lasers and Optics
Jahrgang116
Ausgabenummer3
PublikationsstatusVeröffentlicht - Sept. 2014
Extern publiziertJa

Abstract

We investigated experimentally and numerically the spectral control of modulation instability (MI) dynamics via the initial phase relation of two weak seed fields. Specifically, we show how second-order MI dynamics exhibit phase-dependent anti-correlated growth rates of adjacent spectral sidebands. This effect enables a novel method to control MI-based frequency conversion: in contrast to first-order MI dynamics, which exhibit a uniform phase dependence of the growth rates, second-order MI dynamics allow to redistribute the spectral energy, leading to an asymmetric spectrum. Therefore, the presented findings should be very attractive to different applications, such as phase-sensitive amplification or supercontinuum generation initiated by MI.

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Phase-dependent spectral control of pulsed modulation instability via dichromatic seed fields. / Brinkmann, Maximilian; Kues, Michael; Fallnich, Carsten.
in: Applied Physics B: Lasers and Optics, Jahrgang 116, Nr. 3, 09.2014, S. 763-769.

Publikation: Beitrag in FachzeitschriftArtikelForschung

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T1 - Phase-dependent spectral control of pulsed modulation instability via dichromatic seed fields

AU - Brinkmann, Maximilian

AU - Kues, Michael

AU - Fallnich, Carsten

N1 - Copyright: Copyright 2014 Elsevier B.V., All rights reserved.

PY - 2014/9

Y1 - 2014/9

N2 - We investigated experimentally and numerically the spectral control of modulation instability (MI) dynamics via the initial phase relation of two weak seed fields. Specifically, we show how second-order MI dynamics exhibit phase-dependent anti-correlated growth rates of adjacent spectral sidebands. This effect enables a novel method to control MI-based frequency conversion: in contrast to first-order MI dynamics, which exhibit a uniform phase dependence of the growth rates, second-order MI dynamics allow to redistribute the spectral energy, leading to an asymmetric spectrum. Therefore, the presented findings should be very attractive to different applications, such as phase-sensitive amplification or supercontinuum generation initiated by MI.

AB - We investigated experimentally and numerically the spectral control of modulation instability (MI) dynamics via the initial phase relation of two weak seed fields. Specifically, we show how second-order MI dynamics exhibit phase-dependent anti-correlated growth rates of adjacent spectral sidebands. This effect enables a novel method to control MI-based frequency conversion: in contrast to first-order MI dynamics, which exhibit a uniform phase dependence of the growth rates, second-order MI dynamics allow to redistribute the spectral energy, leading to an asymmetric spectrum. Therefore, the presented findings should be very attractive to different applications, such as phase-sensitive amplification or supercontinuum generation initiated by MI.

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