论文标题

看到高分辨率光谱的云层上方

Seeing above the Clouds with High Resolution Spectroscopy

论文作者

Gandhi, Siddharth, Brogi, Matteo, Webb, Rebecca K.

论文摘要

在过去的十年中,基于地面的高分辨率多普勒光谱法(HRS)在过境和非传输热木星中检测到了许多物种,并且非常适合对温暖的海王星和超级地球进行大气表征。这些凉爽和较小的系外行星中的许多已经显示出来自红外线观测的低分辨率的云大气,这对化学物种的限制变得困难。我们研究了HRS如何改善这些谱系核心核心的敏感性,该核心芯探测到云上方的高度较高的高度。我们为温暖的Neptune GJ〜3470〜B建模传输光谱,并确定与Carmenes,Giano和Spirou光谱仪一起使用H $ _2 $ O的可检测性。我们还为另一个温暖的海王星GJ〜436〜b建模了光谱网格,并在一系列云顶压力和h $ _2 $ o o o的范围内建模。我们显示H $ _2 $ O均可在两个具有适度观察时间的行星中检测到,并且HRS较高的H $ _2 $ o o-o-o丰度高云甲板脱落率都被HRS打破了。但是,只有在高金属性方案中,对丰度和云顶压力的有意义的限制才可能。我们还表明,从gj〜436〜b的多云型号中可能可以检测到$ _4 $和NH $ _3 $的检测。最后,我们展示了地球传输光谱的存在如何阻碍h $ _2 $ o的检测,因为对于最含糊的吸收与最强的h $ _2 $ o特征重叠的最多云。 HRS对分子物种的可能约束可以用于组成分析,并在将来研究此类行星的化学多样性。

In the last decade ground based high resolution Doppler spectroscopy (HRS) has detected numerous species in transiting and non-transiting hot Jupiters, and is ideally placed for atmospheric characterisation of warm Neptunes and super Earths. Many of these cooler and smaller exoplanets have shown cloudy atmospheres from low resolution near infrared observations, making constraints on chemical species difficult. We investigate how HRS can improve on these given its sensitivity to spectral line cores which probe higher altitudes above the clouds. We model transmission spectra for the warm Neptune GJ~3470~b and determine the detectability of H$_2$O with the CARMENES, GIANO and SPIRou spectrographs. We also model a grid of spectra for another warm Neptune, GJ~436~b, over a range of cloud-top pressure and H$_2$O abundance. We show H$_2$O is detectable for both planets with modest observational time and that the high H$_2$O abundance-high cloud deck degeneracy is broken with HRS. However, meaningful constraints on abundance and cloud-top pressure are only possible in the high metallicity scenario. We also show that detections of CH$_4$ and NH$_3$ are possible from cloudy models of GJ~436~b. Lastly, we show how the presence of the Earth's transmission spectrum hinders the detection of H$_2$O for the most cloudy scenarios given that telluric absorption overlaps with the strongest H$_2$O features. The constraints possible with HRS on the molecular species can be used for compositional analysis and to study the chemical diversity of such planets in the future.

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