The hidden depths of planetary atmospheres
arXiv:1801.00738 · doi:10.3847/1538-4357/aad80f
Abstract
Atmospheric regions below a refractive boundary are hidden in limb observations. Refraction thus creates a gray continuum in the planet's transmission spectrum which can hide spectral features associated with sources of atmospheric opacity. We combine refractive theory with recent analytical advances describing the effects of surfaces and clouds on transmission spectra, to express the location of this boundary in atmospheric opacity space, both for atomic and molecular extinction, as well as collision-induced absorption. This allows one to quickly estimate how refraction affects spectral features in well-mixed atmospheres. We show that differences in the geometry of limb observations between solar system planets and exoplanets leads to different locations of this boundary, and that more than four extra scale heights of atmosphere are hidden in exoplanet transits compared to solar system observations of cold gas giants. We explore how the location of this refractive boundary in exoplanet transits changes in a well-mixed isothermal atmosphere with its temperature and composition, the spectral type of the planet's host star, and the size of the planet. We demonstrate that five extra scale heights of atmosphere are hidden in a terrestrial planet with a CO atmosphere compared to a helium atmosphere, resulting in a flatter spectrum than from its smaller scale height alone. We provide results for a few exoplanets, notably those in the TRAPPIST-1 system, to help the scientific community estimate the impact of refraction on the size of spectral features without radiative transfer calculations, and thus help refine planned James Web Space Telescope observations.
27 pages, 15 figures, presented at the 2017 DPS meeting in Provo, UT, and the Exoclipse 2017 meeting in Boise, ID. Accepted for publication in ApJ
References in corpus (17)
- Seven temperate terrestrial planets around the nearby ultracool dwarf star TRAPPIST-1
- Detection of atmospheric haze on an extrasolar planet: The 0.55 - 1.05 micron transmission spectrum of HD189733b with the Hubble Space Telescope
- Atmospheric Retrieval for Super-Earths: Uniquely Constraining the Atmospheric Composition with Transmission Spectroscopy
- Rayleigh scattering in the transit spectrum of HD 189733b
- Water Vapor in the Spectrum of the Extrasolar Planet HD 189733b: 1. the Transit
- Tau-REx I: A next generation retrieval code for exoplanetary atmospheres
- Using Stellar Limb-Darkening to Refine the Properties of HD 209458b
- HST hot-Jupiter transmission spectral survey: detection of potassium in WASP-31b along with a cloud deck and Rayleigh scattering
- Observing transiting planets with JWST -- Prime targets and their synthetic spectral observations
- A consistent retrieval analysis of 10 Hot Jupiters observed in transmission
- Pale Orange Dots: The Impact of Organic Haze on the Habitability and Detectability of Earthlike Exoplanets
- Transit spectroscopy with JWST: Systematics, starspots and stitching
- Titan solar occultation observations reveal transit spectra of a hazy world
- The Effects of Refraction on Transit Transmission Spectroscopy: Application to Earth-like Exoplanets
- High resolution transmission spectrum of the Earth's atmosphere -- Seeing Earth as an exoplanet using a lunar eclipse
- An analytical formalism accounting for clouds and other "surfaces" for exoplanet transmission spectroscopy
- Analytic Scattering and Refraction Models for Exoplanet Transit Spectra
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- The Detectability and Characterization of the TRAPPIST-1 Exoplanet Atmospheres with JWST
- On degeneracies in retrievals of exoplanetary transmission spectra
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- An empirical infrared transit spectrum of Earth: opacity windows and biosignatures
- Stratospheric Clouds Do Not Impede JWST Transit Spectroscopy for Exoplanets with Earth-Like Atmospheres
- On physical interpretations of the reference transit radius of gas-giant exoplanets
- The Diffusion Limit of Photoevaporation in Primordial Planetary Atmospheres