Lightcurves of Stars & Exoplanets: Estimating Inclination, Obliquity, and Albedo
arXiv:1304.6398 · doi:10.1093/mnras/stt1191
Abstract
[Abridged] Distant stars and planets will remain spatially unresolved for the foreseeable future. It is nonetheless possible to infer aspects of their brightness markings and viewing geometries by analyzing disk-integrated rotational and orbital brightness variations. We compute the harmonic lightcurves, F_l^m(t), resulting from spherical harmonic maps of intensity or albedo, Y_l^m(theta,phi), where l and m are the total and longitudinal order. Notably, odd m>1 are present in an inclined lightcurve, but not seen by an equatorial observer. We therefore suggest that the Fourier spectrum of a thermal lightcurve may be sufficient to determine the orbital inclination of non-transiting short-period planets, the rotational inclination of stars and brown dwarfs, and the obliquity of directly imaged planets. In the best-case scenario of a nearly edge-on geometry, measuring the m=3 mode of a star's rotational lightcurve to within a factor of two provides an inclination estimate good to +/- 6 degrees, assuming stars have randomly distributed spots. Alternatively, if stars have brightness maps perfectly symmetric about the equator, their lightcurves will have no m=3 power, regardless of orientation. In general, inclination estimates will remain qualitative until detailed hydrodynamic simulations and/or occultation maps can be used as a calibrator. We further derive harmonic reflected lightcurves for tidally-locked planets; these are higher-order versions of the well-known Lambert phase curve. We show that a non-uniform planet may have an apparent albedo 25% lower than its intrinsic albedo, even if it exhibits precisely Lambertian phase variations. Lastly, we provide low-order analytic expressions for harmonic lightcurves that can be used for fitting observed photometry; as a general rule, edge-on solutions cannot simply be scaled by sin(i) to mimic inclined lightcurves.
MNRAS accepted, 14 pages, 7 figures
References in corpus (14)
- 3.6 and 4.5 Micron Phase Curves and Evidence for Non-Equilibrium Chemistry in the Atmosphere of Extrasolar Planet HD 189733b
- Alien Maps of an Ocean-Bearing World
- Alignment of the stellar spin with the orbits of a three-planet system
- Inverting Phase Functions to Map Exoplanets
- Orbital Phase Variations of the Eccentric Giant Planet HAT-P-2b
- Detecting the Glint of Starlight on the Oceans of Distant Planets
- Hot Nights on Extrasolar Planets: Mid-IR Phase Variations of Hot Jupiters
- Measurements of Stellar Inclinations for Kepler Planet Candidates
- Global Mapping of Earth-like Exoplanets from Scattered Light Curves
- Thermal Phases of Earth-Like Planets: Estimating Thermal Inertia from Eccentricity, Obliquity, and Diurnal Forcing
- Determining Reflectance Spectra of Surfaces and Clouds on Exoplanets
- An Analytic Model for Rotational Modulations in the Photometry of Spotted Stars
- A False Positive For Ocean Glint on Exoplanets: the Latitude-Albedo Effect
- Magnetic activity in the photosphere of CoRoT-Exo-2a. Active longitudes and short-term spot cycle in a young Sun-like star
Cited by in corpus (44)
- STARRY: Analytic Occultation Light Curves
- Changing Phases of Alien Worlds: Probing Atmospheres of Kepler Planets with High-Precision Photometry
- Increased Heat Transport in Ultra-Hot Jupiter Atmospheres Through H Dissociation/Recombination
- Exoplanet Biosignatures: Observational Prospects
- Characterizing Transiting Planet Atmospheres through 2025
- Balancing the Energy Budget of Short-Period Giant Planets: Evidence for Reflective Clouds and Optical Absorbers
- Atmospheric Characterization of the Hot Jupiter Kepler-13Ab
- Doppler Imaging of Exoplanets and Brown Dwarfs
- Uniformly hot nightside temperatures on short-period gas giants
- Detecting Ocean Glint on Exoplanets Using Multiphase Mapping
- Mass Loss from the Exoplanet WASP-12b Inferred from Phase Curves
- Measuring stellar differential rotation with high-precision space-borne photometry
- Mapping stellar surfaces I: Degeneracies in the rotational light curve problem
- Phase Offsets and the Energy Budgets of Hot Jupiters
- Planet-Planet Occultations in TRAPPIST-1 and Other Exoplanet Systems
- Inferring Planetary Obliquity Using Rotational & Orbital Photometry
- A More Informative Map: Inverting Thermal Orbital Phase and Eclipse Lightcurves of Exoplanets
- Exo-Milankovitch Cycles II: Climates of G-dwarf Planets in Dynamically Hot Systems
- Exo-Milankovitch Cycles I: Orbits and Rotation States
- Cloud Atlas: Discovery of Rotational Spectral Modulations in a Low-mass, L-type Brown Dwarf Companion to a Star
- Wavelength Does Not Equal Pressure: Vertical Contribution Functions and their Implications for Mapping Hot Jupiters
- Stellar Characterization of Keck HIRES Spectra with The Cannon
- exocartographer: A Bayesian Framework for Mapping Exoplanets in Reflected Light
- Glory revealed in disk-integrated photometry of Venus
- Cloud Atlas: Weak color modulations due to rotation in the planetary-mass companion GU Psc b and 11 other brown dwarfs
- Models of Warm Jupiter Atmospheres: Observable Signatures of Obliquity
- Superhabitability of High-Obliquity and High-Eccentricity Planets
- Global Mapping of the Surface Composition on an Exo-Earth using Color Variability
- Mapping Exoplanets
- 3-D climate simulations for the detectability of Proxima Centauri b
- Longitudinally Resolved Spectral Retrieval (ReSpect) of WASP-43b
- Analytic Reflected Lightcurves for Exoplanets
- Physically-motivated basis functions for temperature maps of exoplanets
- Fourier spectra from exoplanets with polar caps and ocean glint
- Mapping the Surface of Partially Cloudy Exoplanets is Hard
- Phase Curves of the Kepler-11 Multi-Planet System
- Phase Modeling of the TRAPPIST-1 Planetary Atmospheres
- Weak Seasonality on Temperate Exoplanets Around Low-mass Stars
- Is binning always sinning? The impact of time-averaging for exoplanet phase curves
- Planet Eclipse Mapping with Long-Term Baseline Drifts
- Mapping atmospheric features of the planetary-mass brown dwarf SIMP 0136 with JWST NIRISS
- Precise Constraints on the Energy Budget of WASP-121 b from its JWST NIRISS/SOSS Phase Curve
- Cloudy and Cloud-free Thermal Phase Curves with PICASO: Applications to WASP-43b
- Fourier series for eclipses on exoplanet binaries