Implications of Atmospheric Nondetections for Trappist-1 Inner Planets on Atmospheric Retention Prospects for Outer Planets

被引:15
|
作者
Krissansen-Totton, Joshua [1 ]
机构
[1] Univ Washington, Dept Earth & Space Sci, Astrobiol Program, Seattle, WA 98195 USA
关键词
HABITABLE-ZONE; TERRESTRIAL PLANETS; ABIOTIC OXYGEN; SUPER-EARTH; WATER-LOSS; MOIST ATMOSPHERES; REDOX EVOLUTION; NO EVIDENCE; CLIMATE; DETECTABILITY;
D O I
10.3847/2041-8213/acdc26
中图分类号
P1 [天文学];
学科分类号
0704 ;
摘要
JWST secondary eclipse observations of Trappist-1b seemingly disfavor atmospheres >& SIM;1 bar since heat redistribution is expected to yield dayside emission temperature below the & SIM;500 K observed. Given the similar densities of Trappist-1 planets, and the theoretical potential for atmospheric erosion around late M dwarfs, this observation might be assumed to imply substantial atmospheres are also unlikely for the outer planets. However, the processes governing atmosphere erosion and replenishment are fundamentally different for inner and outer planets. Here, an atmosphere-interior evolution model is used to show that an airless Trappist-1b (and c) only weakly constrains stellar evolution, and that the odds of outer planets e and f retaining substantial atmospheres remain largely unchanged. This is true even if the initial volatile inventories of planets in the Trappist-1 system are highly correlated. The reason for this result is that b and c sit unambiguously interior to the runaway greenhouse limit, and so have potentially experienced & SIM;8 Gyr of X-ray and extreme ultraviolet-driven hydrodynamic escape; complete atmospheric erosion in this environment only weakly constrains stellar evolution and escape parameterizations. In contrast, e and f reside within the habitable zone, and likely experienced a comparatively short steam atmosphere during Trappist-1's pre-main sequence, and consequently complete atmospheric erosion remains unlikely across a broad swath of parameter space (e and f retain atmospheres in & SIM;98% of model runs). Naturally, it is still possible that all Trappist-1 planets formed volatile-poor and are all airless today. But the airlessness of b (and c) does not require this, and as such, JWST transit spectroscopy of e and f remains the best near-term opportunity to characterize the atmospheres of habitable zone terrestrial planets.
引用
收藏
页数:10
相关论文
共 50 条
  • [21] The Threatening Magnetic and Plasma Environment of the TRAPPIST-1 Planets
    Garraffo, Cecilia
    Drake, Jeremy J.
    Cohen, Ofer
    Alvarado-Gomez, Julian D.
    Moschou, Sofia P.
    ASTROPHYSICAL JOURNAL LETTERS, 2017, 843 (02)
  • [23] An experimental study of the biological impact of a superflare on the TRAPPIST-1 planets
    Abrevaya, X. C.
    Odert, P.
    Oppezzo, O. J.
    Leitzinger, M.
    Luna, G. J. M.
    Guenther, E.
    Patel, M. R.
    Hanslmeier, A.
    MONTHLY NOTICES OF THE ROYAL ASTRONOMICAL SOCIETY, 2024, 535 (02) : 1616 - 1624
  • [24] Investigating TRAPPIST-1 e atmospheric scenarios
    Maltagliati, Luca
    NATURE ASTRONOMY, 2021, 5 (06) : 530 - 530
  • [25] Investigating TRAPPIST-1 e atmospheric scenarios
    Luca Maltagliati
    Nature Astronomy, 2021, 5 : 530 - 530
  • [26] Do the TRAPPIST-1 Planets Have Hydrogen-rich Atmospheres?
    Hori, Yasunori
    Ogihara, Masahiro
    ASTROPHYSICAL JOURNAL, 2020, 889 (02):
  • [27] ATMOSPHERIC DYNAMICS ON THE OUTER PLANETS AND SOME OF THEIR SATELLITES
    GOLITSYN, GS
    ICARUS, 1979, 38 (03) : 333 - 341
  • [28] Surface and Oceanic Habitability of Trappist-1 Planets under the Impact of Flares
    Estrela, Raissa
    Palit, Sourav
    Valio, Adriana
    ASTROBIOLOGY, 2020, 20 (12) : 1465 - 1475
  • [29] Connecting atmospheric science and atmospheric models for aerocapture at Titan and the outer planets
    Justus, CG
    Duvall, A
    Keller, VW
    Spilker, TR
    Lockwood, MK
    PLANETARY AND SPACE SCIENCE, 2005, 53 (05) : 601 - 605
  • [30] Modeling climate diversity, tidal dynamics and the fate of volatiles on TRAPPIST-1 planets
    Turbet, Martin
    Bolmont, Emeline
    Leconte, Jeremy
    Forget, Francois
    Selsis, Franck
    Tobie, Gabriel
    Caldas, Anthony
    Naar, Joseph
    Gillon, Michael
    ASTRONOMY & ASTROPHYSICS, 2018, 612