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Improved Spatial Resolution Achieved by Chromatic Intensity Interferometry

Author(s)
Liu, Lu-Chuan; Qu, Luo-Yuan; Wu, Cheng; Cotler, Jordan; Ma, Fei; Zheng, Ming-Yang; Xie, Xiu-Ping; Chen, Yu-Ao; Zhang, Qiang; Wilczek, Frank; Pan, Jian-Wei; ... Show more Show less
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Abstract
Interferometers are widely used in imaging technologies to achieve enhanced spatial resolution, but require that the incoming photons be indistinguishable. In previous work, we built and analyzed color erasure detectors, which expand the scope of intensity interferometry to accommodate sources of different colors. Here we demonstrate experimentally how color erasure detectors can achieve improved spatial resolution in an imaging task, well beyond the diffraction limit. Utilizing two 10.9-mm-aperture telescopes and a 0.8 m baseline, we measure the distance between a 1063.6 and a 1064.4 nm source separated by 4.2 mm at a distance of 1.43 km, which surpasses the diffraction limit of a single telescope by about 40 times. Moreover, chromatic intensity interferometry allows us to recover the phase of the Fourier transform of the imaged objects-a quantity that is, in the presence of modest noise, inaccessible to conventional intensity interferometry.
Date issued
2021
URI
https://hdl.handle.net/1721.1/142333
Department
Massachusetts Institute of Technology. Center for Theoretical Physics
Journal
Physical Review Letters
Publisher
American Physical Society (APS)
Citation
Liu, Lu-Chuan, Qu, Luo-Yuan, Wu, Cheng, Cotler, Jordan, Ma, Fei et al. 2021. "Improved Spatial Resolution Achieved by Chromatic Intensity Interferometry." Physical Review Letters, 127 (10).
Version: Final published version

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