2013
DOI: 10.1063/1.4838275
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Generation of picosecond pulses and frequency combs in actively mode locked external ring cavity quantum cascade lasers

Abstract: We propose a robust and reliable method of active mode locking of mid-infrared quantum cascade lasers and develop its theoretical description. Its key element is the use of an external ring cavity, which circumvents fundamental issues undermining the stability of mode locking in quantum cascade lasers. We show that active mode locking can give rise to the generation of picosecond pulses and phase-locked frequency combs containing thousands of the ring cavity modes.

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Cited by 45 publications
(44 citation statements)
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“…One approach is to numerically solve the full spatiotemporal Maxwell-Bloch equations [53,54]. To obtain analytical results, we follow a common approximation and decouple the spatial and temporal dependencies [55], writing the field as…”
Section: A General Frameworkmentioning
confidence: 99%
“…One approach is to numerically solve the full spatiotemporal Maxwell-Bloch equations [53,54]. To obtain analytical results, we follow a common approximation and decouple the spatial and temporal dependencies [55], writing the field as…”
Section: A General Frameworkmentioning
confidence: 99%
“…Fundamental mode-locking of QCLs has led to intense discussion in the literature [32][33][34] . Mode-locked operation of QCLs is difficult to achieve but have been demonstrated at cryogenic temperatures in the mid-infrared in a design where the upper-state lifetime was significantly increased using a highly diagonal laser transition 32 and in the terahertz where that lifetime is naturally much longer 35 .…”
mentioning
confidence: 99%
“…This arrangement simplifies the mode selection because it minimizes the spatial hole burning effect, and it also allows the use of modulation frequencies low enough to enable complete switching of the laser on and off. This geometry has been analyzed both theoretically [51] and experimentally [52,53].…”
Section: Mode-locking Of Qclsmentioning
confidence: 99%