An on-chip astrophotonic spectrograph with a resolving power of 12,000
Abstract
With the upcoming extremely large telescopes (ELTs), the volume, mass, and cost of the associated spectrographs will scale with the telescope diameter. Astrophotonics offers a unique solution to this problem in the form of single-mode fiber-fed diffraction-limited spectrographs on a chip. These highly miniaturized chips offer great flexibility in terms of coherent manipulation of photons. Such photonic spectrographs are well-suited to disperse the light from directly imaged planets (post-coronagraph, collected using a single-mode fiber) to characterize exoplanet atmospheres. Here we present the results from a proof-of-concept high-resolution astrophotonic spectrograph using the arrayed waveguide gratings (AWG) architecture. This chip uses the low-loss SiN platform (SiN core, SiO cladding) with square waveguides (800 nm 800 nm). The AWG has a measured resolving power () of 12,000 and a free spectral range (FSR) of 2.8 nm. While the FSR is small, the chip operates over a broad band (1200 1700 nm). The peak on-chip throughput (excluding the coupling efficiency) is 40\% (- 4 dB) and the overall throughput (including the coupling loss) is 11\% (- 9.6 dB) in the TE mode. Thanks to the high-confinement waveguide geometry, the chip is highly miniaturized with a size of only 7.4 mm 2 mm. This demonstration highlights the utility of SiN platform for astrophotonics, particularly, the capability of commercial SiN foundries to fabricate ultra-small, high-resolution, high-throughput AWG spectrographs on a chip suitable for both ground- and space-based telescopes.
Keywords
Cite
@article{arxiv.2203.07867,
title = {An on-chip astrophotonic spectrograph with a resolving power of 12,000},
author = {Pradip Gatkine and Nemanja Jovanovic and Jeffrey Jewell and J. Kent Wallace and Dimitri Mawet},
journal= {arXiv preprint arXiv:2203.07867},
year = {2022}
}
Comments
10 pages, 7 figures, Published in the proceedings of SPIE Optics + Photonics conference 2021