Localized modes revealed in random lasers

Abstract

In sufficiently strong scattering media, light transport is suppressed and modes are exponentially localized. Anderson-like localized states have long been recognized as potential candidates for high- Q optical modes for low-threshold, cost-effective random lasers. Operating in this regime remains, however, a challenge since Anderson localization is difficult to achieve in optics, and nonlinear mode interaction compromises its observation. Here, we exhibit individually each lasing mode of a low-dimension solid-state random laser by applying a non-uniform optical gain. By undoing gain competition and cross-saturation, we demonstrate that all lasing modes are spatially localized. We find that selective excitation significantly reduces the lasing threshold, while lasing efficiency is greatly improved. We show further how their spatial locations are critical to boost laser power efficiency. By efficiently suppressing the spatial hole burning effect, we can turn on the optimally outcoupled random lasing modes. Our demonstration opens the road to the exploration of linear and nonlinear mode interactions in the presence of gain, as well as disorder-engineering for laser applications.

Document Details

Document Type
Pub Defense Publication
Publication Date
Jul 26, 2021
Source ID
10.1364/optica.428217

Entities

People

  • Bhupesh Kumar
  • Melanie Lebental
  • Patrick Sebbah
  • Priyanka
  • Ran Homri
  • Santosh K. Maurya

Organizations

  • Air Force Office of Scientific Research
  • Bar-Ilan University
  • Israel Science Foundation
  • Paris-Saclay University
  • ParisTech
  • United States – Israel Binational Science Foundation

Tags

Fields of Study

  • Physics

Readers

  • Computational Fluid Dynamics (CFD)
  • Molecular Photonics/Laser Physics
  • Statistical inference.

Technology Areas

  • Directed Energy
  • Directed Energy - Lasers