CanariCam Mid-Infrared Drift Scanning: Improved Sensitivity and Spatial Resolution
arXiv:2111.00313 · doi:10.1088/1538-3873/ac2ec3
Abstract
Ground-based mid-infrared (MIR) astronomical observations require the removal of the fast time variable components of (a) sky/background variation and (b) array background. Typically, this has been achieved through oscillating the telescope's secondary mirror a few times a second, a process termed "chopping". However, chopping reduces on-object photon collection time, imposes stringent demands on the secondary mirror, requires nodding of the telescope to remove the radiative offset imprinted by the chopping, and relies on an often-fixed chop-frequency regardless of the sky conditions in the actual observations. In the 30m telescope era, secondary mirror chopping is impracticable. However, if the sky and background is sufficiently stable, drift scanning holds the promise to remove the necessity of chopping. In this paper we report our encouraging drift scanning results using the CanariCam MIR instrument on the 10.4m Gran Telescopio Canarias and the implications to future instruments and experiments.
15 pages, 6 figures, 6 tables. arXiv admin note: substantial text overlap with arXiv:2106.01468
References in corpus (5)
- Gemini Imaging of Mid-IR Emission from the Nuclear Region of Centaurus A
- Mid-IR Spectra of Type Ia SN 2014J in M82 Spanning the First Four Months
- An Ordered Magnetic Field in the Protoplanetary Disk of AB Aur Revealed by Mid-Infrared Polarimetry
- Hypercubes of AGN Tori (HYPERCAT) -- I. Models and Image Morphology
- Towards a physical understanding of the thermal background in large ground-based telescopes