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Extended-Path Intensity Correlation: Microarcsecond Astrometry with an Arcsecond Field of View
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abstract
We develop in detail a recently proposed optical-path modification of astronomical intensity interferometers. Extended-Path Intensity Correlation (EPIC) introduces a tunable path extension, enabling differential astrometry of multiple compact sources such as stars and quasars at separations of up to a few arcseconds. Combined with other recent technological advances in spectroscopy and fast single-photon detection, a ground-based intensity interferometer array can achieve microarcsecond resolution and even better light-centroiding accuracy on bright sources of magnitude $m \lesssim 15$. We lay out the theory and technical requirements of EPIC, and discuss the scientific potential. Promising applications include astrometric lensing of stars and quasar images, binary-orbit characterization, exoplanet detection, Galactic acceleration measurements and calibration of the cosmic distance ladder. The introduction of the path extension thus significantly increases the scope of intensity interferometry while reaching unprecedented levels of relative astrometric precision.
Forward citations
Cited by 2 Pith papers
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Expanding Ejecta Method: II. Framework for Cosmological Distance Measurements via Intensity Interferometry
Geometric supernova distances from intensity interferometry could calibrate the distance ladder and measure H0 to between 0.4% and 9% depending on instrument capability and application, all without luminosity calibration.
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Expanding Ejecta Method: I. Mapping Supernova Morphology with Intensity Interferometry
The expanding ejecta method extracts supernova morphology and angular diameter distance from spectrally resolved intensity interferometry, forecasting ~2% distance precision for a magnitude-12 Type IIP supernova in 60 hours.
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