The CHARA Array Polarization Model and Prospects for Spectropolarimetry

Fuente: arXiv
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Autori principali: Shuai, Linling, Monnier, John D., Setterholm, Benjamin R., Kraus, Stefan, Anugu, Narsireddy, Gardner, Tyler, Bouquin, Jean-Baptiste Le, Schaefer, Gail H.
Natura: Preprint
Pubblicazione: 2025
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author Shuai, Linling
Monnier, John D.
Setterholm, Benjamin R.
Kraus, Stefan
Anugu, Narsireddy
Gardner, Tyler
Bouquin, Jean-Baptiste Le
Schaefer, Gail H.
author_facet Shuai, Linling
Monnier, John D.
Setterholm, Benjamin R.
Kraus, Stefan
Anugu, Narsireddy
Gardner, Tyler
Bouquin, Jean-Baptiste Le
Schaefer, Gail H.
contents Polarimetric data provide key insights into infrared emission mechanisms in the inner disks of YSOs and the details of dust formation around AGB stars. While polarization measurements are well-established in radio interferometry, they remain challenging at visible and near-infrared due to the significant time-variable birefringence introduced by the complex optical beamtrain. In this study, we characterize instrumental polarization effects within the optical path of the CHARA Array, focusing on the H-band MIRC-X and K-band MYSTIC beam combiners. Using Jones matrix formalism, we developed a comprehensive model describing diattenuation and retardance across the array. By applying this model to an unpolarized calibrator, we derived the instrumental parameters for both MIRC-X and MYSTIC. Our results show differential diattenuation consistent with >= 97% reflectivity per aluminum-coated surface at 45 deg incidence. The differential retardance exhibits small wavelength-dependent variations, in some cases larger than we expected. Notably, telescope W2 exhibits a significantly larger phase shift in the Coude path, attributable to a fixed aluminum mirror (M4) used in place of deformable mirrors present on the other telescopes during the observing run. We also identify misalignments in the LiNbO_3 birefringent compensator plates on S1 (MIRC-X) and W2 (MYSTIC). After correcting for night-to-night offsets, we achieve calibration accuracies of $\pm$ 3.4% in visibility ratio and $\pm$ 1.4 deg in differential phase for MIRC-X, and $\pm$ 5.9% and $\pm$ 2.4 deg, respectively, for MYSTIC. Given that the differential intrinsic polarization of spatially resolved sources, such as AGB stars and YSOs, typically greater than these instrumental uncertainties, our results demonstrate that CHARA is now capable of achieving high-accuracy measurements of intrinsic polarization in astrophysical targets.
format Preprint
id arxiv_https___arxiv_org_abs_2509_10451
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle The CHARA Array Polarization Model and Prospects for Spectropolarimetry
Shuai, Linling
Monnier, John D.
Setterholm, Benjamin R.
Kraus, Stefan
Anugu, Narsireddy
Gardner, Tyler
Bouquin, Jean-Baptiste Le
Schaefer, Gail H.
Instrumentation and Methods for Astrophysics
Polarimetric data provide key insights into infrared emission mechanisms in the inner disks of YSOs and the details of dust formation around AGB stars. While polarization measurements are well-established in radio interferometry, they remain challenging at visible and near-infrared due to the significant time-variable birefringence introduced by the complex optical beamtrain. In this study, we characterize instrumental polarization effects within the optical path of the CHARA Array, focusing on the H-band MIRC-X and K-band MYSTIC beam combiners. Using Jones matrix formalism, we developed a comprehensive model describing diattenuation and retardance across the array. By applying this model to an unpolarized calibrator, we derived the instrumental parameters for both MIRC-X and MYSTIC. Our results show differential diattenuation consistent with >= 97% reflectivity per aluminum-coated surface at 45 deg incidence. The differential retardance exhibits small wavelength-dependent variations, in some cases larger than we expected. Notably, telescope W2 exhibits a significantly larger phase shift in the Coude path, attributable to a fixed aluminum mirror (M4) used in place of deformable mirrors present on the other telescopes during the observing run. We also identify misalignments in the LiNbO_3 birefringent compensator plates on S1 (MIRC-X) and W2 (MYSTIC). After correcting for night-to-night offsets, we achieve calibration accuracies of $\pm$ 3.4% in visibility ratio and $\pm$ 1.4 deg in differential phase for MIRC-X, and $\pm$ 5.9% and $\pm$ 2.4 deg, respectively, for MYSTIC. Given that the differential intrinsic polarization of spatially resolved sources, such as AGB stars and YSOs, typically greater than these instrumental uncertainties, our results demonstrate that CHARA is now capable of achieving high-accuracy measurements of intrinsic polarization in astrophysical targets.
title The CHARA Array Polarization Model and Prospects for Spectropolarimetry
topic Instrumentation and Methods for Astrophysics
url https://arxiv.org/abs/2509.10451