论文标题

了解行星上下文,以实现系外行星的生命检测并测试哥白尼原则

Understanding planetary context to enable life detection on exoplanets and test the Copernican principle

论文作者

Krissansen-Totton, Joshua, Thompson, Maggie, Galloway, Max L., Fortney, Jonathan J.

论文摘要

在系外行星上寻找生命的是由生活改变其行星环境的普遍方式的动机。氧气和甲烷等大气气体是由于其生产会赋予的进化益处而有望进行这种环境修饰的候选者。但是,确认这些气体是由生命产生的,而不是通过地球化学或天体物理过程产生的,将需要对行星环境有透彻的理解,包括预期的无生命行星的预期反事实大气进化。在这里,我们评估了几种候选生物签名及其即将到来的可观察性的当前对行星环境的理解。我们回顾了氧气的上下文框架,并描述了如何可以测试猜想的非生物氧。与氧气相反,即使詹姆斯·韦伯(James Webb)太空望远镜可以很容易地检测到氧气中的当前对行星环境如何控制非生物甲烷(ch $ _4 $)的生产的理解是有限的。我们评估CH $ _4 $生物签名的环境环境,并得出结论,大气中的大气CH $ _4 $与Co $ _2 $共存,Co:Ch $ _4 $ << 1暗示着生物学生产,尽管精确的阈值取决于出色的上下文,并依赖于稳定的Abiotic CH $ _4 $ _4 $ _4 $ _4 $ _4 $ _4 $ _4 $ _4 $ _4 $ _4 $ _4 $ _4 $ _4 $ _4 $ _4 $ _4 $ _4 $。对于替代或不可知生物签名,也考虑了行星上下文框架。无论宇宙中生命的分布,未来几十年对陆地系外行星的观察都将提供对无生命世界大气演变的定量理解。这些知识将为未来的仪器要求提供依据,以证实在其他地方的生活,或者证实其明显的不存在。

The search for life on exoplanets is motivated by the universal ways in which life could modify its planetary environment. Atmospheric gases such as oxygen and methane are promising candidates for such environmental modification due to the evolutionary benefits their production would confer. However, confirming that these gases are produced by life, rather than by geochemical or astrophysical processes, will require a thorough understanding of planetary context, including the expected counterfactual atmospheric evolution for lifeless planets. Here, we evaluate current understanding of planetary context for several candidate biosignatures and their upcoming observability. We review the contextual framework for oxygen and describe how conjectured abiotic oxygen scenarios may be testable. In contrast to oxygen, current understanding of how planetary context controls non-biological methane (CH$_4$) production is limited, even though CH$_4$ biosignatures in anoxic atmospheres may be readily detectable with the James Webb Space Telescope. We assess environmental context for CH$_4$ biosignatures and conclude that abundant atmospheric CH$_4$ coexisting with CO$_2$, and CO:CH$_4$ << 1 is suggestive of biological production, although precise thresholds are dependent on stellar context and sparsely characterized abiotic CH$_4$ scenarios. A planetary context framework is also considered for alternative or agnostic biosignatures. Whatever the distribution of life in the Universe, observations of terrestrial exoplanets in coming decades will provide a quantitative understanding of the atmospheric evolution of lifeless worlds. This knowledge will inform future instrument requirements to either corroborate the presence of life elsewhere or confirm its apparent absence.

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