Upgrading LBTI/NOMIC with a quadruple annular groove phase mask and GeoSnap detector for imaging nearby, habitable-zone exoplanets
Kevin Wagner, Manny Montoya, Steve Ertel, Jarron Leisenring, Pontus Forsberg, Samuel Ronayette, Andre Wong, Mikael Karlsson, Olivier Absil, Denis Defrère, Markus Kasper, Jordan Stone, Dániel Apai, Laird Close, Jamie Dietrich, Ewan Douglas, Jamie Drew, Olivier Durney, Marina Fetisova, Kyran Grattan, Olivier Guyon, Jacob Isbell, Sebastián Jorquera, Petri Karvinen, Markku Kuittinen, Hervé Le Coroller, Jared Males, Brittany Miles, Dillon O'Reilly, Eric Pantin, Sascha P. Quanz, Eckhart Spalding, Vivek Vijayakumar, Zach Werber, S. Pete Worden
astro-ph.IM, astro-ph.EP
Submitted: 2026-08-23
Updated: 2026-08-25
Comments: To be published as Proc. SPIE 14154-340
License: http://creativecommons.org/licenses/by/4.0/
The gist: The Large Binocular Telescope Interferometer (LBTI)'s Nulling-Optimized Mid-Infrared Camera (NOMIC) is among the most capable thermal-infrared imaging systems available for high-contrast,
Terminology
Abstract
The Large Binocular Telescope Interferometer (LBTI)'s Nulling-Optimized Mid-Infrared Camera (NOMIC) is among the most capable thermal-infrared imaging systems available for high-contrast, high-angular-resolution astronomical observations. Here we describe two in-progress upgrades to LBTI/NOMIC: (1) the design, fabrication, and installation of a quadruple annular groove phase mask (Q-AGPM) coronagraph, and (2) the installation of a 13 micron-cutoff Teledyne GeoSnap array. The Q-AGPM is the first coronagraph to be installed within NOMIC and one of the first optimized for N-band (11 micron) observations. It places four annular groove phase masks on a single diamond substrate so that, in the LBTI dual-aperture imaging mode, each of the two telescope beams can be chopped between a pair of masks without loss of observing efficiency. The GeoSnap array will replace NOMIC's original AQUARIUS array, delivering higher quantum efficiency, larger well depth, faster and more linear readout, and freedom from the excess low-frequency noise that requires aggressive chopping. Together these upgrades substantially improve the achievable contrast and sensitivity at small angular separations. We also present a high-contrast Fizeau imaging sequence obtained with LBTI's new FFTCam fringe tracker, which confirms the interferometric gain over a single aperture through injection/recovery tests: relative to an equal-time single aperture exposure, the S/N = 3 contrast is a factor of 2-4 deeper across 0.2-1 arcsec, spanning the contrast- and background-limited regimes. Finally, we describe the role of the upgraded LBTI/NOMIC instrument within the Breakthrough Watch program at the University of Arizona, which aims to perform the deepest observations yet of the habitable zones of the nearest single Sun-like stars.
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