English

High Speed Focal Plane Wavefront Sensing with an Optical Chopper

Instrumentation and Methods for Astrophysics 2023-03-01 v2 Earth and Planetary Astrophysics

Abstract

Focal plane wavefront sensing and control is a critical approach to reducing non-common path errors between the a conventional astronomical adaptive optics (AO) wavefront sensor (WFS) detector and science camera. However, in addition to mitigating non-common path errors, recent focal plane wavefront sensing techniques have been developed to operate at speeds fast enough to enable "multi-WFS" AO, where residual atmospheric errors are further corrected by a focal plane WFS. Although a number of such techniques have been recently developed for coronagraphic imaging, here we present one designed for non-coronagraphic imaging. Utilizing conventional AO system components, this concept additionally requires (1) a detector imaging the focal plane of the WFS light source and (2) a pupil plane optical chopper device that is non-common path to the first WFS and is synchronized to the focal plane imager readout. These minimal hardware requirements enable the temporal amplitude modulation to resolve the sine ambiguity of even wavefront modes for both low, mid, and high wavefront spatial frequencies. Similar capabilities have been demonstrated with classical phase diversity by defocusing the detector, but such techniques are incompatible with simultaneous science observations. This optical chopping technique, however, enables science imaging at up to a 50% duty cycle. We present both simulations and laboratory validation of this concept on SEAL, the Santa Cruz Extreme AO Laboratory testbed.

Keywords

Cite

@article{arxiv.2301.11282,
  title  = {High Speed Focal Plane Wavefront Sensing with an Optical Chopper},
  author = {Benjamin L. Gerard and Daren Dillon and Sylvain Cetre and Rebecca Jensen-Clem},
  journal= {arXiv preprint arXiv:2301.11282},
  year   = {2023}
}

Comments

accepted to PASP

R2 v1 2026-06-28T08:22:03.214Z