The White Dwarf Opportunity: Robust Detections of Molecules in Earth-like Exoplanet Atmospheres with the James Webb Space Telescope
Возможность, предоставляемая белыми карликами: надежное обнаружение молекул в атмосферах экзопланет, подобных Земле, с помощью космического телескопа имени Джеймса Уэбба
2020-09-01
SCID: 54.1/fy7jjmcm
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James Webb Space Telescopehabitable zonemolecular biosignaturestransmission spectroscopywhite dwarf planets
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Abstract (AI)
Abstract The near-term search for life beyond the solar system currently focuses on transiting planets orbiting small M dwarfs, and the challenges of detecting signs of life in their atmospheres. However, planets orbiting white dwarfs (WDs) would provide a unique opportunity to characterize rocky worlds. The discovery of the first transiting giant planet orbiting a WD, WD 1856+534, showed that planetary-mass objects can survive close-in orbits around WDs. The large radius ratio between WD planets and their host renders them exceptional targets for transmission spectroscopy. Here, we explore the molecular detectability and atmospheric characterization potential for a notional Earth-like planet, evolving in the habitable zone of WD 1856+534, with the James Webb Space Telescope (JWST). We establish that the atmospheric composition of such Earth-like planets orbiting WDs can be precisely retrieved with JWST. We demonstrate that robust >5 σ detections of H 2 O and CO 2 can be achieved in a five-transit reconnaissance program, while the biosignatures O 3 + CH 4 and CH 4 + N 2 O can be detected to >4 σ in as few as 25 transits. N 2 and O 2 can be detected to >5 σ within 100 transits. Given the short transit duration of WD habitable zone planets (∼2 minutes for WD 1856+534), conclusive molecular detections can be achieved in a small or medium JWST transmission spectroscopy program. Rocky planets in the WD habitable zone therefore represent a promising opportunity to characterize terrestrial planet atmospheres and explore the possibility of a second genesis on these worlds.
Key Findings
1
A five-transit JWST reconnaissance program can robustly detect H₂O and CO₂ at greater than 5σ significance.
2
For a notional Earth-like planet in the habitable zone of WD 1856+534, JWST can precisely retrieve atmospheric composition.
3
N₂ and O₂ can be detected above 5σ within 100 transits; short approximately two-minute transits make these observations feasible in small or medium JWST programs.
4
The biosignature combinations O₃ + CH₄ and CH₄ + N₂O can be detected above 4σ in as few as 25 transits.
5
White dwarf planets offer unusually favorable transmission spectroscopy because their large planet-to-host radius ratio enhances atmospheric signals.
Research Object
a notional Earth-like rocky planet in the habitable zone of white dwarf WD 1856+534
Research Subject
the molecular composition and detectability of the planet’s atmosphere, including H2O, CO2, O3, CH4, N2O, N2, and O2, using JWST transmission spectroscopy
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2020-09-01
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