Far-Infrared Double-Fourier Interferometers and their Spectral Sensitivity

Double-Fourier interferometry is the most viable path to subarcsecond spatial resolution for future astronomical instruments that will observe the universe at far-infrared wavelengths. The double transform spatio-spectral interferometry couples pupil plane beam combination with detector arrays to en...

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Veröffentlicht in:Publications of the Astronomical Society of the Pacific 2015-10, Vol.127 (956), p.1045-1060
Hauptverfasser: Rizzo, Maxime J., Mundy, Lee G., Dhabal, Arnab, Fixsen, Dale J., Rinehart, Stephen A., Benford, Dominic J., Leisawitz, David, Silverberg, Robert, Veach, Todd, Juanola-Parramon, Roser
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Sprache:eng
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Zusammenfassung:Double-Fourier interferometry is the most viable path to subarcsecond spatial resolution for future astronomical instruments that will observe the universe at far-infrared wavelengths. The double transform spatio-spectral interferometry couples pupil plane beam combination with detector arrays to enable imaging spectroscopy of wide fields, that will be key to accomplishing top-level science goals. The wide field of view and the necessity for these instruments to fly above the opaque atmosphere create unique characteristics and requirements compared to instruments on ground-based telescopes. In this paper, we discuss some characteristics of single-baseline spatio-spectral interferometers. We investigate the impact of intensity and optical path difference noise on the interferogram and the spectral signal-to-noise ratio. We apply our findings to the special case of the Balloon Experimental Twin Telescope for Infrared Interferometry (BETTII), a balloon payload that will be a first application of this technique at far-infrared wavelengths on a flying platform.
ISSN:0004-6280
1538-3873
DOI:10.1086/683176