论文标题
通过太阳系模拟观察探索和验证系外行星大气检索
Exploring and Validating Exoplanet Atmospheric Retrievals with Solar System Analog Observations
论文作者
论文摘要
用作外部遥感数据的类似物的太阳系观测值可以提供重要的机会来验证与系外行星环境相关的想法和模型。至关重要的是,与真实的系外行星观测不同,太阳系模拟数据受益于可用的高质量地面或轨道衍生的“真实”约束,从而可以对外部数据解释工具进行强有力的验证。在这项工作中,我们首先提出了一个多功能的大气检索套件,该套件能够反映光,热发射和传播观测值,涵盖了广泛的波长和热化学条件。该工具(称为Rfast)的设计部分是为了实现系外行星任务概念可行性研究。在模型验证之后,将检索工具应用于系外星环境的一系列太阳系模拟观测值。使用地球反映的光观测的检索研究为不足开发外的直接成像概念任务提供了关键的概念证明。逆模型应用于MARS全球测量师热发射光谱仪的地球红外光谱,对大气气体(包括许多生物签名气体)的构成良好的限制。最后,检索分析应用于来自卡西尼视觉和红外映射光谱仪的泰坦的过境光谱,为解释来自NASA的James Webb Space望远镜(JWST)解释更丰富特征富特功能的过渡系外行星观测提供了证明。将来,可以使用太阳能系统模拟观测来验证系外行星模型和参数化,并应鼓励将未来的系外行星模拟观测值对行星科学任务的任何太阳系世界进行观察。
Solar System observations that serve as analogs for exoplanet remote sensing data can provide important opportunities to validate ideas and models related to exoplanet environments. Critically, and unlike true exoplanet observations, Solar System analog data benefit from available high-quality ground- or orbiter-derived "truth" constraints that enable strong validations of exoplanet data interpretation tools. In this work, we first present a versatile atmospheric retrieval suite, capable of application to reflected light, thermal emission, and transmission observations spanning a broad range of wavelengths and thermochemical conditions. The tool -- dubbed rfast -- is designed, in part, to enable exoplanet mission concept feasibility studies. Following model validation, the retrieval tool is applied to a range of Solar System analog observations for exoplanet environments. Retrieval studies using Earth reflected light observations from NASA's EPOXI mission provide a key proof-of-concept for under-development exo-Earth direct imaging concept missions. Inverse modeling applied to an infrared spectrum of Earth from the Mars Global Surveyor Thermal Emission Spectrometer achieves good constraints on atmospheric gases, including many biosignature gases. Finally, retrieval analysis applied to a transit spectrum of Titan derived from the Cassini Visual and Infrared Mapping Spectrometer provides a proof-of-concept for interpreting more feature-rich transiting exoplanet observations from NASA's James Webb Space Telescope (JWST). In the future, Solar System analog observations for exoplanets could be used to verify exoplanet models and parameterizations, and future exoplanet analog observations of any Solar System worlds from planetary science missions should be encouraged.