Conjugate-plane photometry: Reducing scintillation in ground-based photometry
arXiv:1009.5261 · doi:10.1111/j.1365-2966.2010.17759.x
Abstract
High precision fast photometry from ground-based observatories is a challenge due to intensity fluctuations (scintillation) produced by the Earth's atmosphere. Here we describe a method to reduce the effects of scintillation by a combination of pupil reconjugation and calibration using a comparison star. Because scintillation is produced by high altitude turbulence, the range of angles over which the scintillation is correlated is small and therefore simple correction by a comparison star is normally impossible. We propose reconjugating the telescope pupil to a high dominant layer of turbulence, then apodizing it before calibration with a comparison star. We find by simulation that given a simple atmosphere with a single high altitude turbulent layer and a strong surface layer a reduction in the intensity variance by a factor of ~30 is possible. Given a more realistic atmosphere as measured by SCIDAR at San Pedro Mártir we find that on a night with a strong high altitude layer we can expect the median variance to be reduced by a factor of 11. By reducing the scintillation noise we will be able to detect much smaller changes in brightness. If we assume a 2 m telescope and an exposure time of 30 seconds a reduction in the scintillation noise from 0.78 mmag to 0.21 mmag is possible, which will enable the routine detection of, for example, the secondary transits of extrasolar planets from the ground.
9 pages, 15 figures
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Cited by in corpus (10)
- Towards Space-like Photometric Precision from the Ground with Beam-Shaping Diffusers
- Atmospheric Scintillation in Astronomical Photometry
- Stereo-SCIDAR: Optical turbulence profiling with high sensitivity using a modified SCIDAR instrument
- Scintillation correction for astronomical photometry on large and extremely large telescopes with tomographic atmospheric reconstruction
- SHIMM: A Versatile Seeing Monitor for Astronomy
- Angular correlation of the stellar scintillation on large telescopes
- Atmospheric Scintillation Noise in Ground-Based Exoplanet Photometry
- Scintillation-limited photometry with the 20-cm NGTS telescopes at Paranal Observatory
- Extreme precision photometry from the ground with beam-shaping diffusers for K2, TESS and beyond
- Using chromatic covariance to correct for scintillation noise in ground-based spectrophotometry