论Ariel与地基高分辨率光谱学的协同作用

IF 2.7 3区 物理与天体物理 Q2 ASTRONOMY & ASTROPHYSICS
Gloria Guilluy, Alessandro Sozzetti, Paolo Giacobbe, Aldo S. Bonomo, Giuseppina Micela
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引用次数: 3

摘要

自从1995年首次发现围绕主序星的太阳系外行星以来,探测到的系外行星数量急剧增加。在过去的二十年里,观测仪器(包括机载和地面设施)揭示了行星物理特征(即质量和半径)和轨道参数(如周期、半长轴、倾角)的惊人多样性。系外行星大气通过其可观测的光谱印记为理解这些差异的起源提供了直接线索。在不久的将来,即将到来的地面和太空望远镜将把系外行星科学的重点从“物种发现”时代转移到“大气表征”时代。在此背景下,大气遥感红外系外行星大巡天(Ariel)将发挥关键作用。由于它的设计目的是观察和表征大量不同的系外行星样本,Ariel将提供广泛的大气特性限制,使我们能够提取比迄今为止可能的更多信息(例如,对行星形成和演化过程的见解)。Ariel获得的低分辨率光谱将探测到不同于地面高分辨率光谱观测到的层,因此这两种技术之间的协同作用为理解行星大气的物理特性提供了独特的机会。在本文中,我们为建立一个框架奠定了基础,以有效利用近红外波长高分辨率数据集(通过互相关技术分析)与基于Ariel低分辨率光谱的光谱检索分析。我们展示了初步结果,使用基准对象,即HD 209458 b,解决了在温度结构和分子/原子丰度方面提供改进约束的可能性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
On the synergy between Ariel and ground-based high-resolution spectroscopy

Since the first discovery of an extra-solar planet around a main-sequence star, in 1995, the number of detected exoplanets has increased enormously. Over the past two decades, observational instruments (both onboard and on ground-based facilities) have revealed an astonishing diversity in planetary physical features (i. e. mass and radius), and orbital parameters (e.g. period, semi-major axis, inclination). Exoplanetary atmospheres provide direct clues to understand the origin of these differences through their observable spectral imprints. In the near future, upcoming ground and space-based telescopes will shift the focus of exoplanetary science from an era of “species discovery” to one of “atmospheric characterization”. In this context, the Atmospheric Remote-sensing Infrared Exoplanet Large (Ariel) survey, will play a key role. As it is designed to observe and characterize a large and diverse sample of exoplanets, Ariel will provide constraints on a wide gamut of atmospheric properties allowing us to extract much more information than has been possible so far (e.g. insights into the planetary formation and evolution processes). The low resolution spectra obtained with Ariel will probe layers different from those observed by ground-based high resolution spectroscopy, therefore the synergy between these two techniques offers a unique opportunity to understanding the physics of planetary atmospheres. In this paper, we set the basis for building up a framework to effectively utilise, at near-infrared wavelengths, high-resolution datasets (analyzed via the cross-correlation technique) with spectral retrieval analyses based on Ariel low-resolution spectroscopy. We show preliminary results, using a benchmark object, namely HD 209458 b, addressing the possibility of providing improved constraints on the temperature structure and molecular/atomic abundances.

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来源期刊
Experimental Astronomy
Experimental Astronomy 地学天文-天文与天体物理
CiteScore
5.30
自引率
3.30%
发文量
57
审稿时长
6-12 weeks
期刊介绍: Many new instruments for observing astronomical objects at a variety of wavelengths have been and are continually being developed. Furthermore, a vast amount of effort is being put into the development of new techniques for data analysis in order to cope with great streams of data collected by these instruments. Experimental Astronomy acts as a medium for the publication of papers of contemporary scientific interest on astrophysical instrumentation and methods necessary for the conduct of astronomy at all wavelength fields. Experimental Astronomy publishes full-length articles, research letters and reviews on developments in detection techniques, instruments, and data analysis and image processing techniques. Occasional special issues are published, giving an in-depth presentation of the instrumentation and/or analysis connected with specific projects, such as satellite experiments or ground-based telescopes, or of specialized techniques.
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