Model validation and tolerancing of scalar vortex masks in the High Contrast Imaging Testbed (HCIT) facility

Fuente: arXiv
Saved in:
Bibliographic Details
Main Authors: Desai, Niyati, Ruane, Garreth, Shanks, Daniel, König, Lorenzo, Redmond, Susan, Mennesson, Bertrand
Format: Preprint
Published: 2026
Subjects:
Online Access:
Tags: Add Tag
No Tags, Be the first to tag this record!
_version_ 1866908908606455808
author Desai, Niyati
Ruane, Garreth
Shanks, Daniel
König, Lorenzo
Redmond, Susan
Mennesson, Bertrand
author_facet Desai, Niyati
Ruane, Garreth
Shanks, Daniel
König, Lorenzo
Redmond, Susan
Mennesson, Bertrand
contents The Habitable Worlds Observatory (HWO) mission will require coronagraphs capable of suppressing starlight at the $\sim 10^{-10}$ contrast level to directly image exo-Earths. High contrast achromatic coronagraphic masks are the missing critical component to achieving this. Vortex coronagraphs, particularly scalar vortex designs with an achromatic focal plane mask, offer key advantages. While all vortex coronagraph varieties provide high throughput, a small inner working angle, and rejection of low-order aberrations, the scalar approach enables dual-polarization observation in a single optical path. This simplifies instrument design and increases transmission by maintaining light from the planet in two orthogonal polarization states. In this work we test scalar vortex masks and investigate their contrast limitations. We perform phase metrology to assess the mask defects and manufacturing deviations and use it to refine the coronagraphic model used for electric field conjugation (EFC) algorithms and end-to-end simulations. We also measure the impact of model-mismatch with EFC by varying model parameters including clocking angle, and central wavelength in laboratory demonstrations. Finally, we validate our scalar vortex models against experimental results from the High Contrast Imaging Testbed (HCIT) facility at JPL by finding good agreement between lab and simulated performance. This ultimately helps to benchmark simulated contrast predictions for future scalar vortex coronagraph designs for HWO.
format Preprint
id arxiv_https___arxiv_org_abs_2603_22537
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Model validation and tolerancing of scalar vortex masks in the High Contrast Imaging Testbed (HCIT) facility
Desai, Niyati
Ruane, Garreth
Shanks, Daniel
König, Lorenzo
Redmond, Susan
Mennesson, Bertrand
Instrumentation and Methods for Astrophysics
The Habitable Worlds Observatory (HWO) mission will require coronagraphs capable of suppressing starlight at the $\sim 10^{-10}$ contrast level to directly image exo-Earths. High contrast achromatic coronagraphic masks are the missing critical component to achieving this. Vortex coronagraphs, particularly scalar vortex designs with an achromatic focal plane mask, offer key advantages. While all vortex coronagraph varieties provide high throughput, a small inner working angle, and rejection of low-order aberrations, the scalar approach enables dual-polarization observation in a single optical path. This simplifies instrument design and increases transmission by maintaining light from the planet in two orthogonal polarization states. In this work we test scalar vortex masks and investigate their contrast limitations. We perform phase metrology to assess the mask defects and manufacturing deviations and use it to refine the coronagraphic model used for electric field conjugation (EFC) algorithms and end-to-end simulations. We also measure the impact of model-mismatch with EFC by varying model parameters including clocking angle, and central wavelength in laboratory demonstrations. Finally, we validate our scalar vortex models against experimental results from the High Contrast Imaging Testbed (HCIT) facility at JPL by finding good agreement between lab and simulated performance. This ultimately helps to benchmark simulated contrast predictions for future scalar vortex coronagraph designs for HWO.
title Model validation and tolerancing of scalar vortex masks in the High Contrast Imaging Testbed (HCIT) facility
topic Instrumentation and Methods for Astrophysics
url https://arxiv.org/abs/2603.22537