Kernel nullers for an arbitrary number of apertures
Romain Laugier, Nick Cvetojevic, Frantz Martinache

TL;DR
This paper generalizes the kernel nuller architecture for an arbitrary number of apertures, providing a systematic design approach for robust interferometric nulling in high-contrast astrophysical imaging.
Contribution
It introduces a systematic method to design kernel nullers for any number of apertures, extending previous four-beam designs and highlighting symmetry properties for robustness.
Findings
Presented kernel nuller designs for 3, 4, and 6 apertures.
Demonstrated that combiners grow quadratically with the number of apertures.
Showed that the designs are lossless, complete, and optimized for minimal outputs.
Abstract
The use of interferometric nulling for the direct detection of extrasolar planets is in part limited by the extreme sensitivity of the instrumental response to tiny optical path differences between apertures. The recently proposed kernel-nuller architecture attempts to alleviate this effect with an all-in-one combiner design that enables the production of observables inherently robust to residual optical path differences (<< lambda). Until now, a unique kernel nuller design has been proposed ad hoc for a four-beam combiner. We examine the properties of this original design and generalize them for an arbitrary number of apertures. We introduce a convenient graphical representation of the complex combiner matrices that model the kernel nuller and highlight the symmetry properties that enable the formation of kernel nulls. The analytical description of the nulled outputs we provide…
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