Metal-Mesh Linear Variable Filter for Far-Infrared Wavelengths
Abstract
Future far-infrared (IR) observatories require compact and cost efficient optical linear variable bandpass filters (LVBFs) to define their instrument spectral bands. We have designed novel far-IR LVBFs that consist of metal-mesh bandpass filters comprised of a gold film with cross-slots of varying sizes along a silicon (Si) substrate with anti-reflection (AR) coatings. We present our work on the simulated and measured transmission of non-AR coated and AR coated LVBFs for bandpass peaks from wavelengths of 24 to 36 m with a resolving power () of R6 for non-AR coated LVBFs and R4 for AR coated LVBFs. We also present a method to decrease the effects of out-of-band high frequency transmission exhibited by metal-mesh filters by depositing a thin layer of hydrogenated amorphous silicon (a-Si:H) on the metal-mesh of the LVBF. We have fabricated and measured the LVBFs at room temperature and cryogenic temperatures (5 K). We measure a high peak transmission of 80-90 \% for the AR coated LVBF at 5 K and demonstrate that the a-Si:H LVBF is a promising method to address out-of-band high frequency transmission.
Cite
@article{arxiv.2410.00826,
title = {Metal-Mesh Linear Variable Filter for Far-Infrared Wavelengths},
author = {Joanna Perido and Kevin Denis and Sean O. Clancy and Nicholas F. Cothard and Peter K. Day and Jason Glenn and Henry Leduc and Manuel Quijada and Jessica Patel and Edward Wollack},
journal= {arXiv preprint arXiv:2410.00826},
year = {2024}
}
Comments
8 pages, 10 figures, accepted to Applied Optics