论文标题
GCM对Co $ _2 $ -CH $ _4 $生物签名对的可检测性的约束在trappist-1e上使用JWST
GCM Constraints on the Detectability of the CO$_2$-CH$_4$ Biosignature Pair on TRAPPIST-1e with JWST
论文作者
论文摘要
将以JWST/NIRSPEC的新容量观察陆地系外行星,例如Trappist-1E,预计将能够检测到CO $ _2 $,CH $ _4 $,并且O $ _2 $信号(如果存在)以及多个共同添加的交通观测。 CO $ _2 $ -CH $ _4 $尤其是理论上是一种潜在的生物签名,当推断为化学不平衡。在这里,我们使用Exocam通用循环模型(GCM)模拟Trappist-1E的大气层,假设一个带有水蛋白酶表面的无带湿的,潮汐锁定的星球,其大气成分从$ 10^{-4} $ bar to Partial Co $ _2 $ _2 $ _2 $ _2 $ _2 $ _2 $ _2 $ _2 $ _2 $ _2 $ _2 $ _2 $ _2 $ _2 $ _2 $ _2 $ _2 $ _2 $ _2 $ _2 $ _2 $。我们调查有无现代地球的CH $ _4 $混合率的情况,以检查Co $ _2 $和CH $ _4 $的影响对地球的传输频谱和气候状态的影响。 We demonstrate that in the optimistic haze-free cloudy case, H$_2$O, CO$_2$, and CH$_4$ could all be detectable in less than 50 transits within an atmosphere of 1 bar N$_2$ and 10 mbar CO$_2$ during JWST's lifespan with NIRSpec as long as the noise floor is $\lesssim$ 10 ppm.我们发现,在这些乐观的情况下,JWST可能能够检测出潜在的生物签名对,例如Co $ _2 $ -CH $ _4 $ trappist-1E在各种大气中的大气中的大气中,并且临时气候变异性不会显着影响NIRSPEC PRISM的NIRSPEC PRISM的特征变异性。
Terrestrial exoplanets such as TRAPPIST-1e will be observed in a new capacity with JWST/NIRSpec, which is expected to be able to detect CO$_2$, CH$_4$, and O$_2$ signals, if present, with multiple co-added transit observations. The CO$_2$-CH$_4$ pair in particular is theorized to be a potential biosignature when inferred to be in chemical disequilibrium. Here, we simulate TRAPPIST-1e's atmosphere using the ExoCAM General Circulation Model (GCM), assuming an optimistic haze-free, tidally locked planet with an aquaplanet surface, with varying atmospheric compositions from $10^{-4}$ bar to 1 bar of partial CO$_2$ pressure with 1 bar of background N$_2$. We investigate cases both with and without a modern Earth-like CH$_4$ mixing ratio to examine the effect of CO$_2$ and CH$_4$ on the transmission spectrum and climate state of the planet. We demonstrate that in the optimistic haze-free cloudy case, H$_2$O, CO$_2$, and CH$_4$ could all be detectable in less than 50 transits within an atmosphere of 1 bar N$_2$ and 10 mbar CO$_2$ during JWST's lifespan with NIRSpec as long as the noise floor is $\lesssim$ 10 ppm. We find that in these optimistic cases, JWST may be able to detect potential biosignature pairs such as CO$_2$-CH$_4$ in TRAPPIST-1e's atmosphere across a variety of atmospheric CO$_2$ content, and that temporal climate variability does not significantly affect spectral feature variability for NIRSpec PRISM.