Simulating Reflected Light Exoplanet Spectra of the Promising Direct Imaging Target, Andromedae d, with a New, Fast Sampling Method Using the Planetary Spectrum Generator
arXiv:2107.00015 · doi:10.3847/1538-3881/abf657
Abstract
Simulations of exoplanet albedo profiles are key to planning and interpreting future direct imaging observations. In this paper we demonstrate the use of the Planetary Spectrum Generator to produce simulations of reflected light exoplanet spectra. We use PSG to examine multiple issues relevant to all models of directly imaged exoplanet spectra and to produce sample spectra of the bright, nearby exoplanet Andromedae d, a potential direct imaging target for next-generation facilities. We introduce a new, fast, and accurate subsampling technique that enables calculations of disk-integrated spectra one order of magnitude faster than Chebyshev-Gauss sampling for moderate- to high-resolution sampling. Using this method and a first-principles-derived atmosphere for And d, we simulate phase-dependent spectra for a variety of different potential atmospheric configurations. The simulated spectra for And d include versions with different haze and cloud properties. Based on our combined analysis of this planet's orbital parameters, phase-and illumination-appropriate model spectra, and realistic instrument noise parameters, we find that And d is a potentially favorable direct imaging and spectroscopy target for the Coronagraph Instrument (CGI) on the Nancy Grace Roman Space Telescope. When a noise model corresponding to the Roman CGI SPC spectroscopy mode is included, PSG predicts the time required to reach a signal-to-noise ratio of 10 of the simulated spectra in both the central wavelength bin of the Roman CGI SPC spectroscopy mode (R=50 spectrum) and of the Band 1 HLC imaging mode is approximately 400 and less than 40 hr, respectively. We also discuss potential pathways to extricating information about the planet and its atmosphere with future observations and find that Roman observations may be able to bound the interior temperature of the planet.
23 pages, 14 figures
References in corpus (14)
- Wide-Field InfrarRed Survey Telescope-Astrophysics Focused Telescope Assets WFIRST-AFTA 2015 Report
- The Gemini Planet Imager: First Light
- Line and Mean Opacities for Ultracool Dwarfs and Extrasolar Planets
- Sodium Absorption From the Exoplanetary Atmosphere of HD189733b Detected in the Optical Transmission Spectrum
- Synthetic Spectra and Colors of Young Giant Planet Atmospheres: Effects of Initial Conditions and Atmospheric Metallicity
- Exoplanet Reflected Light Spectroscopy with PICASO
- The Wide Field Infrared Survey Telescope: 100 Hubbles for the 2020s
- Exo-Transmit: An Open-Source Code for Calculating Transmission Spectra for Exoplanet Atmospheres of Varied Composition
- Direct detection of exoplanets in the 3 -- 10 micron range with E-ELT/METIS
- Parent Stars of Extrasolar Planets. VIII. Chemical Abundances for 18 Elements in 31 Stars
- The Nancy Grace Roman Space Telescope Coronagraph Instrument (CGI) Technology Demonstration
- The 3-dimensional architecture of the Upsilon Andromedae planetary system
- Paving the Way to Future Missions: the Roman Space Telescope Coronagraph Technology Demonstration
- Simulating the WFIRST coronagraph Integral Field Spectrograph
Cited by in corpus (5)
- The pale blue dot: using the Planetary Spectrum Generator to simulate signals from hyper realistic exo-Earths
- Instrumentation prospects for rocky exoplanet atmospheres studies with high resolution spectroscopy
- Photobombing Earth 2.0: Diffraction Limit Related Contamination and Uncertainty in Habitable Planet Spectra
- Cloudy and Cloud-free Thermal Phase Curves with PICASO: Applications to WASP-43b
- Eighteen Exoplanet Host Stars from the NPOI Data Archive