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Disequilibrium biosignatures over Earth history and implications for detecting exoplanet life

机译:在地球历史上的不平衡生物充分性和检测外产寿命的影响

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Chemical disequilibrium in planetary atmospheres has been proposed as a generalized method for detecting life on exoplanets through remote spectroscopy. Among solar system planets with substantial atmospheres, the modern Earth has the largest thermodynamic chemical disequilibrium due to the presence of life. However, how this disequilibrium changed over time and, in particular, the biogenic disequilibria maintained in the anoxic Archean or less oxic Proterozoic eons are unknown. We calculate the atmosphere-ocean disequilibrium in the Precambrian using conservative proxy-and model-based estimates of early atmospheric and oceanic compositions. We omit crustal solids because subsurface composition is not detectable on exoplanets, unlike above-surface volatiles. We find that (i) disequilibrium increased through time in step with the rise of oxygen; (ii) both the Proterozoic and Phanerozoicmay have had remotely detectable biogenic disequilibria due to the coexistence of O-2, N-2, and liquid water; and (iii) the Archean had a biogenic disequilibrium caused by the coexistence of N-2, CH4, CO2, and liquid water, which, for an exoplanet twin, may be remotely detectable. On the basis of this disequilibrium, we argue that the simultaneous detection of abundant CH4 and CO2 in a habitable exoplanet's atmosphere is a potential biosignature. Specifically, we show that methane mixing ratios greater than 10(-3) are potentially biogenic, whereas those exceeding 10(-2) are likely biogenic due to the difficulty in maintaining large abiotic methane fluxes to support high methane levels in anoxic atmospheres. Biogenicity would be strengthened by the absence of abundant CO, which should not coexist in a biological scenario.
机译:已经提出了通过远程光谱通过远程光谱通过远程光谱检测产外部寿命的广义方法的化学不平衡。在具有实质性气氛的太阳系行星中,由于生命的存在,现代地球具有最大的热力学化学不平衡。然而,这种不平衡随着时间的推移而变化,特别是在缺氧船队或较少的氧代子古代EON中保持的生物不平衡纤维纤维纤维纤维纤维纤维纤维纤维纤维纤维纤维纤维纤维纤维纤维纤维我们使用基于保守的代理和基于模型的早期大气和海洋组成的估算来计算预先征地的大气海洋不平衡。我们省略了地壳固体,因为与表面挥发物不同,外表面组合物在外产上不可检测。我们发现(i)在氧气升高的速度上,不平衡通过时间越来越多; (ii)由于O-2,N-2和液态水的共存,NOREROZOICO和PHANEROZICOICE具有远程可检测的生物不平衡; (iii)Archean具有由N-2,CH 4,CO 2的共存引起的生物不平衡,而液态水可以远程可检测。在这种不平衡的基础上,我们认为同时检测居住的外出大气中的丰富CH4和CO2是潜在的生物炎。具体而言,我们表明,大于10(-3)的甲烷混合比是潜在的生物原性,而超过10(-2)的那些可能是由于保持大的非生物甲烷通量难以支持缺氧气氛中的高甲烷水平而产生的生物原性。由于没有丰富的公司,遗传性将加强,这不应该在生物情景中共存。

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