AI Article Synopsis

  • Laser state control is hard because of losses and other tricky effects in super-fast systems.
  • A special material called TaPdS was used to help manage these tricky effects in a laser by working with different light angles.
  • This research shows how to switch between different types of laser light and even use the laser for digital coding, paving the way for new light devices.

Article Abstract

Laser state active controlling is challenging under the influence of inherent loss and other nonlinear effects in ultrafast systems. Seeking an extension of degree of freedom in optical devices based on low-dimensional materials may be a way forward. Herein, the anisotropic quasi-one-dimensional layered material TaPdS was utilized as a saturable absorber to modulate the nonlinear parameters effectively in an ultrafast system by polarization-dependent absorption. The polarization-sensitive nonlinear optical response facilitates the TaPdS-based mode-lock laser to sustain two types of laser states, i.e., conventional soliton and noise-like pulse. The laser state was switchable in the single fiber laser with a mechanism revealed by numerical simulation. Digital coding was further demonstrated in this platform by employing the laser as a codable light source. This work proposed an approach for ultrafast laser state active controlling with low-dimensional material, which offers a new avenue for constructing tunable on-fiber devices.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC11251271PMC
http://dx.doi.org/10.1038/s41377-024-01423-3DOI Listing

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