English

End-to-end simulations of photonic phase correctors for adaptive optics systems

Optics 2024-07-17 v1 Instrumentation and Methods for Astrophysics

Abstract

Optical beams and starlight distorted by atmospheric turbulence can be corrected with adaptive optics systems to enable efficient coupling into single-mode fibers. Deformable mirrors, used to flatten the wavefront in astronomical telescopes, are costly, sensitive, and complex mechanical components that require careful calibration to enable high-quality imaging in astronomy, microscopy, and vision science. They are also impractical to deploy in large numbers for non-imaging applications like free-space optical communication. Here, we propose a photonic integrated c rcuit capable of spatially sampling the wavefront collected by the telescope and co-phasing the subapertures to maximize the flux delivered to an output single-mode fiber as the integrated photonic implementation of a deformable mirror. We present the results of end-to-end simulations to quantify the performance of the proposed photonic solution under varying atmospheric conditions toward realizing an adaptive optics system without a deformable mirror for free-space optical receivers.

Keywords

Cite

@article{arxiv.2407.11171,
  title  = {End-to-end simulations of photonic phase correctors for adaptive optics systems},
  author = {Dhwanil Patel and Momen Diab and Ross Cheriton and Jacob Taylor and Libertad Rojas and Martin Vachon and Dan-Xia Xu and Jens H. Schmid and Pavel Cheben and Siegfried Janz and Suresh Sivanandam},
  journal= {arXiv preprint arXiv:2407.11171},
  year   = {2024}
}

Comments

14 pages, 8 figures, 1 table, to be published in Optics Express. Corresponding author: Momen Diab ([email protected])