Silicon-platelet feedhorn arrays are an established technology at millimeter wavelengths that, for some applications, can provide significant advantages over traditional direct-machined metal feedhorns. The Prime-Cam focal planes operating in the 350 GHz (∼860 μm) and 850 GHz (∼350 μm) bands are anticipated to carry the first silicon-platelet feedhorn arrays to operate fully at submillimeter wavelengths, representing a significant step forward in the application of this technology. In particular, the feedhorns designed for operation in the 850 GHz band represent a 3x increase in frequency compared to previously demonstrated and deployed devices of this type. Here we present a demonstration of silicon-platelet feedhorns at these submillimeter wavelengths, including in-lab performance characterization. We present fabrication metrology, room-temperature beammaps, and cryogenic optical efficiency measurements where the feedhorns are coupled to prototype CCAT Prime-Cam detectors. We show that feedhorn performance measurements are well matched to simulation and compare that performance directly to traditional, direct-machined metal feedhorns.
@article{arxiv.2604.22075,
title = {CCAT: Silicon-Platelet Feedhorns for Submillimeter Wavelengths},
author = {Jason Austermann and James Beall and James R. Burgoyne and Scott Chapman and Steve Choi and Cody J. Duell and Anthony I. Huber and Johannes Hubmayr and Matthew A. Koc and Michael D. Niemack and Joel N. Ullom and Jeffrey van Lanen and Anna Vaskuri and Michael Vissers and Jordan Wheeler},
journal= {arXiv preprint arXiv:2604.22075},
year = {2026}
}
Comments
9 pages, 9 figures. Special issue of IEEE Transactions on Applied Superconductivity for proceedings of the 2025 Low Temperature Detectors (LTD) conference