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arXiv · 2607.21768

The FastrSHWFS Development & Test Results

Abstract

The recent 2020 Decadal Survey of Astronomy and Astrophysics listed habitable exoplanet imaging with future extreme adaptive optics (AO) on 30m-class telescopes as a key priority in the coming decade. However, there is a current 100x contrast gap between the best systems today and what is needed to enable this goal. Astronomical AO is a required approach to enable ground-based diffraction-limited imaging of exoplanets on future extremely large telescopes. Time lag between the end of an exposure and the application of deformable mirror commands is a major contributor to the error budget in many AO systems, and detector read time is often a large component of this lag. We present two designs for a modified Shack Hartmann wavefront sensor (SHWFS), named Focal plane Actualized Shifted Technique Realized for a SHWFS (fastrSHWFS), to reduce the time lag component. This design steers the spot pattern at the focal plane into a rectangular or linear array with a custom aspect ratio, reducing readout time. These masks were made by a recently available gray-scale two photon polymerization 3D printing technology that in principle provides sufficient depth resolution and dynamic range for such masks. The mask with focus yields aberrated results while the mask with tip/tilt only yields some defined spots. This manuscript outlines the current SHWFS concept, our fastrSHWFS theoretical solution to addressing time lag, reflection and quality analysis of printed mask designs, and results from testing both masks on the High Contrast Testbed at Lawrence Livermore National Lab. This work follows the test of a previous fabricated fastrSHWFS masks that had insufficient optical quality.

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Natasha Popenoe, Benjamin Gerard, Dominic Sanchez. 2026-07-23. The FastrSHWFS Development & Test Results. https://arxiv.org/abs/2607.21768

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