论文标题
Trappist-1e的高分辨率光谱模型被视为ELT和JWST观测的淡蓝色点
High-Resolution spectral models of TRAPPIST-1e seen as a Pale Blue Dot for ELT and JWST observations
论文作者
论文摘要
附近M矮人在宜居区(Hz)旋转的岩石外球星人为表征其气氛和寻找生物签名气体提供了独特的机会。 Trappist-1E是附近M矮人Hz中的温带地球大小的系外行星,可以说是极大的望远镜(ELTS)和James Webb太空望远镜(JWST)对地面和空间大气表征的最有利目标。为了使用这些即将到来的望远镜在反射和发射的灯光中的未来观察结果,我们模拟了现代和类似益生元的地球样大气组成的Trappist-1E的高分辨率反射和发射光谱。为了证明波长依赖性反照率对气候和光谱的影响,我们进一步模拟了每个大气组成的五个反照率情景:云状的现代地球,无云的现代地球,类似云状的海洋星球,100%的百叶窗星球和100%的云状行星和波长 - 独立的障碍率为0.31。我们为模型使用了最近的trappist-1的Mega-Muscles光谱能量分布(SED)。我们表明,o $ _2 $ + ch $ _4 $和o $ _3 $ + ch $ _4 $ _4 $生物签名对以及气候指标(CO $ _2 $和H $ _2 $ O)在高分辨率反射和Trappist-1E的高分辨率反射和发射光谱中都显示了Elts可以搜索的高分辨率反思和发射光谱。我们针对具有各种表面组成和云分布的现代和益生元trappist-1E模型的高分辨率数据库为观察者提供了一种训练检索算法和计划观察策略的工具,以表征这个潜在的可居住世界。
Rocky exoplanets orbiting in the habitable zone (HZ) of nearby M dwarfs provide unique opportunities for characterizing their atmospheres and searching for biosignature gases. TRAPPIST-1e, a temperate Earth-sized exoplanet in the HZ of a nearby M dwarf, is arguably the most favorable target for ground- and space-based atmospheric characterization by the extremely large telescopes (ELTs) and the James Webb Space Telescope (JWST). To inform future observations in reflected and emitted lights using these upcoming telescopes, we simulate the high-resolution reflection and emission spectra for TRAPPIST-1e for both modern and prebiotic Earth-like atmospheric compositions. To demonstrate the effects of wavelength-dependent albedo on climate and spectra, we further simulate five albedo scenarios for each atmospheric composition: cloudy modern Earth-like, cloud-free modern Earth-like, cloudy ocean planet, 100 per cent cloudy planet, and wavelength-independent albedo of 0.31. We use the recent Mega-MUSCLES spectral energy distribution (SED) of TRAPPIST-1 for our models. We show that the O$_2$ + CH$_4$ and O$_3$ + CH$_4$ biosignature pairs as well as climate indicators (CO$_2$ and H$_2$O) show features in both high-resolution reflection and emission spectra of TRAPPIST-1e that the ELTs can search for. Our high-resolution database for modern and prebiotic Earth TRAPPIST-1e models with various surface compositions and cloud distributions provides a tool for observers to train retrieval algorithms and plan observation strategies to characterize this potentially habitable world.