论文标题
Aura-3D:系外行星传输光谱的三维大气检索框架
Aura-3D: A Three-dimensional Atmospheric Retrieval Framework for Exoplanet Transmission Spectra
论文作者
论文摘要
大气检索系外行星传播光谱可以限制日夜终结者区域的组成和结构。过去,这种检索通常假设具有一维温度结构,足以解释现有的观察结果。然而,通过JWST的系外行星光谱的预期数据质量的提高激发了多维大气检索的考虑。我们提出了Aura-3D,这是一个三维大气检索框架,用于系外行星传输光谱。 AURA-3D包括一个正向模型,该模型可以在3D几何形状中快速计算给定大气结构的传输光谱,因此可以用于大气检索以及从一般循环模型(GCMS)的计算光谱。为了有效地探索检索中可能的3D温度结构的空间,我们开发了一个参数3D压力温度的轮廓,该轮廓可以准确地代表一系列热木星GCM的方位角平均温度结构。我们将检索框架应用于模拟热木星传输光谱的JWST观察结果,从而准确地估计了整个终结剂的昼夜温度变化以及化学物种的丰度。我们演示了模型热木星传输频谱的一个示例,传统的JWST质量数据的1D检索返回了有偏见的丰度估计,而包括昼夜温度梯度在内的检索可以准确地检索真正的丰度。我们的正向模型还具有包括不均匀化学以及可变云/危险的能力。这个新的检索框架在JWST时代使用系外行星的传输光谱开放了该领域,以详细介绍了多维大气表征。
Atmospheric retrievals of exoplanet transmission spectra allow constraints on the composition and structure of the day-night terminator region. Such retrievals in the past have typically assumed one-dimensional temperature structures which were adequate to explain extant observations. However, the increasing data quality expected from exoplanet spectroscopy with JWST motivates considerations of multidimensional atmospheric retrievals. We present AURA-3D, a three-dimensional atmospheric retrieval framework for exoplanet transmission spectra. AURA-3D includes a forward model that enables rapid computation of transmission spectra in 3D geometry for a given atmospheric structure and can, therefore, be used for atmospheric retrievals as well as for computing spectra from General Circulation Models (GCMs). In order to efficiently explore the space of possible 3D temperature structures in retrievals, we develop a parametric 3D pressure-temperature profile which can accurately represent azimuthally-averaged temperature structures of a range of hot Jupiter GCMs. We apply our retrieval framework to simulated JWST observations of hot Jupiter transmission spectra, obtaining accurate estimates of the day-night temperature variation across the terminator as well as the abundances of chemical species. We demonstrate an example of a model hot Jupiter transmission spectrum for which a traditional 1D retrieval of JWST-quality data returns biased abundance estimates, whereas a retrieval including a day-night temperature gradient can accurately retrieve the true abundances. Our forward model also has the capability to include inhomogeneous chemistry as well as variable clouds/hazes. This new retrieval framework opens the field to detailed multidimensional atmospheric characterisation using transmission spectra of exoplanets in the JWST era.