MIRECLE: Science Yield for a Mid-IR Explorer-Class Mission to Study Non-Transiting Rocky Planets Orbiting the Nearest M-Stars Using Planetary Infrared Excess
arXiv:2207.13727 · doi:10.3847/1538-3881/ac83a5
Abstract
Recent investigations have demonstrated the potential for utilizing a new observational and data analysis technique for studying the atmospheres of non-transiting exoplanets with combined light that relies on acquiring simultaneous, broad-wavelength spectra and resolving planetary infrared emission from the stellar spectrum through simultaneous fitting of the stellar and planetary spectral signatures. This new data analysis technique, called Planetary Infrared Excess (PIE), holds the potential to open up the opportunity for measuring MIR phase curves of non-transiting rocky planets around the nearest stars with a relatively modest telescope aperture. We present simulations of the performance and science yield for a mission and instrument concept that we call the MIR Exoplanet CLimate Explorer (MIRECLE), a concept for a moderately-sized cryogenic telescope with broad wavelength coverage (1 - 18 um) and a low-resolution (R ~ 50) spectrograph designed for the simultaneous wavelength coverage and extreme flux measurement precision necessary to detect the emission from cool rocky planets with PIE. We present exploratory simulations of the potential science yield for PIE measurements of the nearby planet Proxima Cen b, showing the potential to measure the composition and structure of an Earth-like atmosphere with a relatively modest observing time. We also present overall science yields for several mission architecture and performance metrics, and discuss the technical performance requirements and potential telescope and instrument technologies that could meet these requirements.
Accepted to Astronomical Journal
References in corpus (25)
- A terrestrial planet candidate in a temperate orbit around Proxima Centauri
- Most 1.6 Earth-Radius Planets are not Rocky
- The habitability of Proxima Centauri b II. Possible climates and Observability
- Observing the Atmospheres of Known Temperate Earth-sized Planets with JWST
- Transmission spectral properties of clouds for hot Jupiter exoplanets
- The Detectability and Characterization of the TRAPPIST-1 Exoplanet Atmospheres with JWST
- Methane, Carbon Monoxide, and Ammonia in Brown Dwarfs and Self-Luminous Giant Planets
- Is Proxima Centauri b habitable? -- A study of atmospheric loss
- K-H_2 Quasi-molecular absorption detected in the T-dwarf epsilon Indi Ba
- The California-Kepler Survey. X. The Radius Gap as a Function of Stellar Mass, Metallicity, and Age
- Impact of Clouds and Hazes on the Simulated JWST Transmission Spectra of Habitable Zone Planets in the TRAPPIST-1 System
- A candidate short-period sub-Earth orbiting Proxima Centauri
- Detectability of atmospheric features of Earth-like planets in the habitable zone around M dwarfs
- Revisiting Proxima with ESPRESSO
- The Case and Context for Atmospheric Methane as an Exoplanet Biosignature
- Prospects for Characterizing the Atmosphere of Proxima Centauri b
- ALMA Discovery of Dust Belts Around Proxima Centauri
- Stratosphere circulation on tidally locked ExoEarths
- Probabilistic Constraints on the Mass and Composition of Proxima b
- Proxima Centauri b is not a transiting exoplanet
- A New Method For Studying Exoplanet Atmospheres Using Planetary Infrared Excess
- 3-D climate simulations for the detectability of Proxima Centauri b
- Hierarchical Bayesian Atmospheric Retrieval Modeling for Population Studies of Exoplanet Atmospheres: A Case Study on the Habitable Zone
- Characterization of a 15 Cutoff HgCdTe Detector Array for Astronomy
- Retrieving Exoplanet Atmospheres using Planetary Infrared Excess: Prospects for the Nightside of WASP-43 b and other Hot Jupiters