Attaining Doppler Precision of 10 cm/s with a Lock-In Amplified Spectrometer
arXiv:1510.05602 · doi:10.1086/683796
Abstract
We explore the radial velocity performance benefits of coupling starlight to a fast-scanning interferometer and a fast-readout spectrometer with zero readout noise. By rapidly scanning an interferometer we can decouple wavelength calibration errors from precise radial velocity measurements, exploiting the advantages of lock-in amplification. In a Bayesian framework, we investigate the correlation between wavelength calibration errors and resulting radial velocity errors. We construct an end-to-end simulation of this approach to address the feasibility of achieving 10 cm/s radial velocity precision on a typical Sun-like star using existing, 5-meter-class telescopes. We find that such a precision can be reached in a single night, opening up possibilities for ground-based detections of Earth-Sun analog systems.
9 pages, 6 figures, 2 tables. Accepted to PASP
References in corpus (8)
- Prevalence of Earth-size planets orbiting Sun-like stars
- High-precision wavelength calibration of astronomical spectrographs with laser frequency combs
- A new list of thorium and argon spectral lines in the visible
- Spectral models for solar-scaled and alpha-enhanced stellar populations
- Theory of Dispersed Fixed-Delay Interferometry for Radial Velocity Exoplanet Searches
- Measuring Stellar Radial Velocities with a Dispersed Fixed-Delay Interferometer
- Initial Results from the USNO Dispersed Fourier Transform Spectrograph
- Robo-AO: autonomous and replicable laser-adaptive-optics and science system