On physical interpretations of the reference transit radius of gas-giant exoplanets
arXiv:1909.12639 · doi:10.1093/mnras/stz2746
Abstract
Two theoretical quandaries involving transmission spectra of gas-giant exoplanets are elucidated. When computing the transit radius as a function of wavelength, one needs to specify a reference transit radius corresponding to a reference pressure. Mathematically, the reference transit radius is a constant of integration that originates from evaluating an integral for the transit depth. Physically, its interpretation has been debated in the literature. Jordan & Espinoza (2018) suggested that the optical depth is discontinuous across, and infinite below, the reference transit radius. Betremieux & Swain (2017, 2018) interpreted the spherical surface located at the reference transit radius to represent the boundary associated with an opaque cloud deck. It is demonstrated that continuous functions for the optical depth may be found. The optical depth below and at the reference transit radius need not take on special or divergent values. In the limit of a spatially uniform grey cloud with constant opacity, the transit chord with optical depth on the order of unity mimics the presence of a "cloud top". While the surface located at the reference pressure may mimic the presence of grey clouds, it is more natural to include the effects of these clouds as part of the opacity function because the cloud opacity may be computed from first principles. It is unclear how this mimicry extends to non-grey clouds comprising small particles.
Accepted by MNRAS. 7 pages, 2 figures
References in corpus (5)
- Atmospheric Retrieval for Super-Earths: Uniquely Constraining the Atmospheric Composition with Transmission Spectroscopy
- Rayleigh scattering in the transit spectrum of HD 189733b
- A Cloudiness Index for Transiting Exoplanets Based on the Sodium and Potassium Lines: Tentative Evidence for Hotter Atmospheres Being Less Cloudy at Visible Wavelengths
- An analytical formalism accounting for clouds and other "surfaces" for exoplanet transmission spectroscopy
- A Non-isothermal Theory for Interpreting Sodium Lines in Transmission Spectra of Exoplanets
Cited by in corpus (6)
- Cloud property trends in hot and ultra-hot giant gas planets (WASP-43b, WASP-103b, WASP-121b, HAT-P-7b, and WASP-18b)
- The New Generation Planetary Population Synthesis (NGPPS). VI. Introducing KOBE: Kepler Observes Bern Exoplanets. Theoretical perspectives on the architecture of planetary systems: Peas in a pod
- Information content of JWST-NIRSPEC transmission spectra of warm Neptunes
- How do we optimally sample model grids of exoplanet spectra?
- Transverse Vector Decomposition Method for Analytical Inversion of Exoplanet Transit Spectra
- Grain Growth in Escaping Atmospheres: Implications for the Radius Inflation of Super-Puffs