Energy and wave-action flows underlying Rayleigh-Jeans thermalization of optical waves propagating in a multimode fiber - Archive ouverte HAL
Article Dans Une Revue EPL - Europhysics Letters Année : 2021

Energy and wave-action flows underlying Rayleigh-Jeans thermalization of optical waves propagating in a multimode fiber

Résumé

The wave turbulence theory predicts that a conservative system of nonlinear waves can exhibit a process of condensation, which originates in the singularity of the Rayleigh-Jeans equilibrium distribution of classical waves. Considering light propagation in a multimode fiber, we show that light condensation is driven by an energy flow toward the higher-order modes, and a bi-directional redistribution of the wave-action (or power) to the fundamental mode and to higher-order modes. The analysis of the near-field intensity distribution provides experimental evidence of this mechanism. The kinetic equation also shows that the wave-action and energy flows can be inverted through a thermalization toward a negative temperature equilibrium state, in which the high-order modes are more populated than low-order modes. In addition, a Bogoliubov stability analysis reveals that the condensate state is stable.
Fichier principal
Vignette du fichier
epl_special_issue_arxiv.pdf (1.42 Mo) Télécharger le fichier
Origine Fichiers produits par l'(les) auteur(s)

Dates et versions

hal-03036912 , version 1 (02-12-2020)

Identifiants

Citer

K Baudin, A Fusaro, J Garnier, N Berti, K Krupa, et al.. Energy and wave-action flows underlying Rayleigh-Jeans thermalization of optical waves propagating in a multimode fiber. EPL - Europhysics Letters, 2021, 134 (1), pp.14001. ⟨10.1209/0295-5075/134/14001⟩. ⟨hal-03036912⟩
69 Consultations
45 Téléchargements

Altmetric

Partager

More