Coherent mode locking is based on the formation of 2π pulses of self-induced transparency in the absorbing medium and π pulses in the amplifying medium. In this regime it becomes possible to generate ultrashort laser pulses down to one oscillation cycle with a pulse duration being much shorter than the polarization relaxation time T2 of the amplifying and absorbing medium. In this article a two-section laser model with a ring resonator based on absorbing and amplifying medium with short relaxation times has been applied. We have demonstrated a self-starting regime of coherent mode locking with picosecond and femtosecond laser pulses using numerical simulations for the given model. In addition, we have shown that there is a significant influence of generation frequency detuning on laser pulse duration and intensity. Moreover, we have compared our numerical results with an analytical model of a coherent mode-locked laser based on the area theorem. We believe that the findings of this work can open a pathway towards the practical application of mode locking in mid-IR and THz quantum cascade lasers. © The Author(s), under exclusive licence to Springer-Verlag GmbH Germany, part of Springer Nature 2024.
Original languageEnglish
JournalApplied Physics B: Lasers and Optics
Volume130
Issue number10
DOIs
StatePublished - 22 Sep 2024

    Research areas

  • Keys (for locks), Laser mode locking, Laser resonators, Mode-locked fiber lasers, Picosecond lasers, Relaxation time, Ultrashort pulses, Absorbing medium, Coherent modes, Laser modeling, Modelocking, Oscillation cycles, Polarization relaxation, Pulse durations, Self-induced transparency, Two-section lasers, Ultrashort Laser, Quantum cascade lasers

ID: 126355259