The Pale Green Dot: A Method to Characterize Proxima Centauri b using Exo-Aurorae
arXiv:1609.09075 · doi:10.3847/1538-4357/aa6040
Abstract
We examine the feasibility of detecting auroral emission from the potentially habitable exoplanet Proxima Centauri b. Detection of aurorae would yield an independent confirmation of the planet's existence, constrain the presence and composition of its atmosphere, and determine the planet's eccentricity and inclination, thereby breaking the mass-inclination degeneracy. If Proxima Centauri b is a terrestrial world with an Earth-like atmosphere and magnetic field, we estimate the power at the 5577Å OI auroral line is on the order of 0.1 TW under steady-state stellar wind, or stronger than that on Earth. This corresponds to a planet-star contrast ratio of in a narrow band about the 5577Å line, although higher contrast () may be possible during periods of strong magnetospheric disturbance (auroral power TW). We searched the Proxima Centauri b HARPS data for the 5577Å line and for other prominent oxygen and nitrogen lines, but find no signal, indicating that the OI auroral line contrast must be lower than (with power 3,000 TW), consistent with our predictions. We find that observations of 0.1 TW auroral emission lines are likely infeasible with current and planned telescopes. However, future observations with a space-based coronagraphic telescope or a ground-based extremely large telescope (ELT) with a coronagraph could push sensitivity down to terawatt oxygen aurorae (contrast ) with exposure times of day. If a coronagraph design contrast of can be achieved with negligible instrumental noise, a future concept ELT could observe steady-state auroral emission in a few nights.
19 pages, 4 tables, 10 figures. Accepted to ApJ
References in corpus (24)
- A terrestrial planet candidate in a temperate orbit around Proxima Centauri
- Most 1.6 Earth-Radius Planets are not Rocky
- The Gemini Planet Imager: First Light
- Constraining the Age-Activity Relation for Cool Stars: The SDSS DR5 Low-Mass Star Spectroscopic Sample
- Extreme Water Loss and Abiotic O Buildup On Planets Throughout the Habitable Zones of M Dwarfs
- Thermal structure of an exoplanet atmosphere from phase-resolved emission spectroscopy
- The habitability of Proxima Centauri b II. Possible climates and Observability
- Combining high-dispersion spectroscopy (HDS) with high contrast imaging (HCI): Probing rocky planets around our nearest neighbors
- The habitability of Proxima Centauri b. I. Irradiation, rotation and volatile inventory from formation to the present
- Carbon monoxide and water vapor in the atmosphere of the non-transiting exoplanet HD 179949 b
- Atmospheric characterization of Proxima b by coupling the Sphere high-contrast imager to the Espresso spectrograph
- Predicting low-frequency radio fluxes of known extrasolar planets
- The 4.5 m full-orbit phase curve of the hot Jupiter HD 209458b
- Habitable Evaporated Cores: Transforming Mini-Neptunes into Super-Earths in the Habitable Zones of M Dwarfs
- Hot Nights on Extrasolar Planets: Mid-IR Phase Variations of Hot Jupiters
- A New 24 micron Phase Curve for upsilon Andromedae b
- The Space Weather of Proxima Centauri b
- Magnetospheric Structure and Atmospheric Joule Heating of Habitable Planets Orbiting M-dwarf Stars
- MOST Observations of our Nearest Neighbor: Flares on Proxima Centauri
- Weighted principal component analysis: a weighted covariance eigendecomposition approach
- First limits on the occurrence rate of short-period planets orbiting brown dwarfs
- Possible Internal Structures and Compositions of Proxima Centauri b
- Rounding up the wanderers: optimizing coronagraphic searches for extrasolar planets
- Spectroscopic Coronagraphy for Planetary Radial Velocimetry of Exoplanets