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Statistical physical theory of mode-locking laser generation with a frequency comb

2014/09/30 by Fabrizio Antenucci, F Antenucci, Miguel Ibáñez-Berganza +2 · 19 citations
Chemistry · Mathematics · Physics and Astronomy · #Advanced Fiber Laser Technologies #Electromagnetic field #Hamiltonian (control theory) #Laser #Laser-Matter Interactions and Applications #Lasing threshold #Mathematics #Monte Carlo method #Observable #Optics #Physics #Quantum mechanics #Spectroscopy and Laser Applications #cond-mat.dis-nn #cond-mat.stat-mech #physics.optics

paper · pdf · doi:10.1103/physreva.91.043811

published in Physical Review A 91(4) (American Physical Society) · 7 pages, 6 figures + 2 videos in attachment. To view the videos download them from the ancillary files list or download and extract the gzipped tar source file listed under "Other formats" to retrieve the supplemental file

openalex publication_date 2015/04/07 · arxiv created 2015/04/23 · arxiv updated 2015/04/24 · openalex created_date 2016/06/24 · openalex updated_date 2026/08/05

Abstract

A study of the mode-locking lasing pulse formation in closed cavities is presented within a statistical-mechanical framework where the onset of laser coincides with a thermodynamic phase transition driven by the optical power pumped into the system. Electromagnetic modes are represented by classical degrees of freedom of a Hamiltonian model at equilibrium in an effective ensemble corresponding to the stationary laser regime. By means of optimized Monte Carlo numerical simulations, the system properties are analyzed while varying mode interaction dilution, gain profile, and number of modes. Properties of the resulting mode-locking laser phase are presented that were not observed in previous approaches based on mean-field approximations. For strong dilution of the nonlinear interaction network, power condensation occurs as the total optical intensity is taken by a few electromagnetic modes, whose number does not depend on the size of the system. For all reported cases, laser thresholds, intensity spectra, phase waves, and ultrafast electromagnetic pulses are computed.

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