论文标题
搜索睫毛膏-2B/KELT-20B传输光谱中的热反转剂:中性铁和离子化钙H $ \&$ k线的检测
Searching for Thermal Inversion Agents in the Transmission Spectrum of MASCARA-2b/KELT-20b: Detection of Neutral Iron and Ionised Calcium H$\&$K Lines
论文作者
论文摘要
我们分析了Kelt-20b/Mascara-2b的传输光谱,以搜索可能的热反转剂。数据由使用HARPSN获得的三个转运和使用CARMENES组成。我们在与1D平行模型中产生的光谱模板交叉相互关联之前,我们删除了恒星和牙龈线,假设在太阳金属性时具有等温气氛和化学平衡。使用似然映射方法,我们在$> $> $> $> $ 13- $σ$,ca \,{\ sc ii} h $ \&$ k at $> $ 6- $σ$上检测到fe \,{\ sc i} fe \,{\ sc i}从行星休息框架上移动-3.4 $ \ pm $ 0.4 km s $^{ - 1} $,这表明昼夜风强。我们的可能性映射技术还表明,检测物种的吸收特征延伸到地球大气中的不同高度。假设线列表是准确的,我们不会检测到其他潜在的热反转剂(NAH,MGH,ALO,SH,CAO,VO,FOH,FEH和TIO),这表明非化学平衡机制(例如,冷陷阱)可能已经从上层大气层中去除了TI-和V型TI-和V型物种。因此,我们的结果表明,Kelt-20b/Mascara-2b不能具有由TIO/VO相关机制引起的反转层。因此,反转层的存在可能是由金属原子(例如fe \ {\ sc i}和fe \,{\ sc ii}引起的。最后,我们报告了所有数据集中的Fe \,{\ sc i}信号中的双峰结构,这可能是大气动力学的签名。但是,需要进一步研究以鲁棒性确定信号的起源。
We analyse the transmission spectra of KELT-20b/MASCARA-2b to search for possible thermal inversion agents. The data consist of three transits obtained using HARPSN and one using CARMENES. We removed stellar and telluric lines before cross-correlating the residuals with spectroscopic templates produced using a 1D plane-parallel model assuming an isothermal atmosphere and chemical equilibrium at solar metallicity. Using a likelihood-mapping method, we detect Fe\,{\sc i} at $>$ 13-$σ$, Ca\,{\sc ii} H$\&$K at $>$ 6-$σ$ and confirm the previous detections of Fe\,{\sc ii}, Ca\,{\sc ii} IRT and Na\,{\sc i} D. The detected signal of Fe\,{\sc i} is shifted by -3.4$\pm$0.4 km s$^{-1}$ from the planetary rest frame, which indicates a strong day-night wind. Our likelihood-mapping technique also reveals that the absorption features of the detected species extend to different altitudes in the planet's atmosphere. Assuming that the line lists are accurate, we do not detect other potential thermal inversion agents (NaH, MgH, AlO, SH, CaO, VO, FeH and TiO) suggesting that non-chemical equilibrium mechanisms (e.g. a cold-trap) might have removed Ti- and V-bearing species from the upper atmosphere. Our results, therefore, shows that KELT-20b/MASCARA-2b cannot possess an inversion layer caused by a TiO/VO-related mechanism. The presence of an inversion layer would therefore likely be caused by metal atoms such as Fe\,{\sc i} and Fe\,{\sc ii}. Finally, we report a double-peak structure in the Fe\,{\sc i} signal in all of our data-sets that could be a signature of atmospheric dynamics. However, further investigation is needed to robustly determine the origin of the signal.