Monitoring Telluric Absorption with CAMAL
arXiv:1706.01798 · doi:10.1088/1538-3873/aa77ab
Abstract
Ground-based astronomical observations may be limited by telluric water vapor absorption, which is highly variable in time and significantly complicates both spectroscopy and photometry in the near-infrared (NIR). To achieve the sensitivity required to detect Earth-sized exoplanets in the NIR, simultaneous monitoring of precipitable water vapor (PWV) becomes necessary to mitigate the impact of variable telluric lines on radial velocity measurements and transit light curves. To address this issue, we present the Camera for the Automatic Monitoring of Atmospheric Lines (CAMAL), a stand-alone, inexpensive six-inch aperture telescope dedicated to measuring PWV at the Fred Lawrence Whipple Observatory on Mount Hopkins. CAMAL utilizes three narrowband NIR filters to trace the amount of atmospheric water vapor affecting simultaneous observations with the MINiature Exoplanet Radial Velocity Array (MINERVA) and MINERVA-Red telescopes. Here we present the current design of CAMAL, discuss our data analysis methods, and show results from 11 nights of PWV measurements taken with CAMAL. For seven nights of data, we have independent PWV measurements extracted from high-resolution stellar spectra taken with the Tillinghast Reflector Echelle Spectrometer (TRES) also located on Mount Hopkins. We use the TRES spectra to calibrate the CAMAL absolute PWV scale. Comparisons between CAMAL and TRES PWV estimates show excellent agreement, matching to within 1 mm over a 10 mm range in PWV. Analysis of CAMAL's photometric precision propagates to PWV measurements precise to better than 0.5 mm in dry (PWV < 4 mm) conditions. We also find that CAMAL-derived PWVs are highly correlated with those from a GPS-based water vapor monitor located approximately 90 km away at Kitt Peak National Observatory, with a root mean square PWV difference of 0.8 mm.
17 pages, 14 figures, Accepted for publication in PASP
References in corpus (12)
- Seven temperate terrestrial planets around the nearby ultracool dwarf star TRAPPIST-1
- SDSS Standard Star Catalog for Stripe 82: the Dawn of Industrial 1% Optical Photometry
- Carbon monoxide and water vapor in the atmosphere of the non-transiting exoplanet HD 179949 b
- A comprehensive radial velocity error budget for next generation Doppler spectrometers
- Miniature Exoplanet Radial Velocity Array (MINERVA) I. Design, Commissioning, and First Science Results
- Towards More Precise Survey Photometry for PanSTARRS and LSST: Measuring Directly the Optical Transmission Spectrum of the Atmosphere
- Near Infrared Monitoring of Ultracool Dwarfs: Prospects for Searching for Transiting Companions
- Telluric-line subtraction in high-accuracy velocimetry: a PCA-based approach
- Impact of micro-telluric lines on precise radial velocities and its correction
- Calibration of the Relationship between Precipitable Water Vapor and 225 GHz Atmospheric Opacity via Optical Echelle Spectroscopy at Las Campanas Observatory
- Monitoring the atmospheric throughput at Cerro Tololo Inter-American Observatory with aTmCam
- aTmcam: A Simple Atmospheric Transmission Monitoring Camera For Sub 1% Photometric Precision
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- The Perkins INfrared Exosatellite Survey (PINES) I. Survey Overview, Reduction Pipeline, and Early Results