Modeling beam propagation in a moving nonlinear medium
Abstract
Fully describing light propagation in a rotating, anisotropic medium with thermal nonlinearity requires modeling the interplay between nonlinear refraction, birefringence, and the nonlinear group index. Incorporating these factors into a generalized nonlinear Schr\"odinger equation and fitting them to recent experimental results reveals two key relationships: the photon drag effect can have a nonlinear component that is dependent on the motion of the medium, and the temporal dynamics of the moving birefringent nonlinear medium create distorted figure-eight-like transverse trajectories at the output. The beam trajectory can be accurately modelled with a full understanding of the propagation effects. Efficiently modeling these effects and accurately predicting the beam's output position has implications for optimizing applications in velocimetry and beam-steering. Understanding the roles of competitive nonlinearities gives insight into the creation or suppression of nonlinear phenomena like self-action effects.
Cite
@article{arxiv.2403.04238,
title = {Modeling beam propagation in a moving nonlinear medium},
author = {Ryan Hogan and Giulia Marcucci and Akbar Safari and A. Nicholas Black and Boris Braverman and Jeremy Upham and Robert W. Boyd},
journal= {arXiv preprint arXiv:2403.04238},
year = {2024}
}
Comments
17 pages, 10 figures, 2 tables