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对冰岛火山-冰川地区不同环境样本的光谱特征进行分析:对行星原位探测的启示。

Spectroscopic characterization of samples from different environments in a Volcano-Glacial region in Iceland: Implications for in situ planetary exploration.

机构信息

University of Maryland, Department of Astronomy, College Park, MD 20742, USA; NASA Goddard Space Flight Center, Greenbelt, MD 20771, USA.

Brimrose Corporation of America, Sparks-Glencoe, MD 21152, USA.

出版信息

Spectrochim Acta A Mol Biomol Spectrosc. 2021 Dec 15;263:120205. doi: 10.1016/j.saa.2021.120205. Epub 2021 Jul 23.

Abstract

Raman spectroscopy and laser induced breakdown spectroscopy (LIBS) are complementary techniques that together can provide a comprehensive characterization of geologic environments. For landed missions with constrained access to target materials on other planetary bodies, discerning signatures of life and habitability can be daunting, particularly where the preservation of organic compounds that contain the building blocks of life is limited. The main challenge facing any spectroscopy measurements of natural samples is the complicated spectra that often contain signatures for multiple components, particularly in rocks that are composed of several minerals with surfaces colonized by microbes. The goal of this study was to use the combination of Raman spectroscopy and LIBS to discern different environmental regimes based on the identification of minerals and biomolecules in rocks and sediments. Iceland is a terrestrial volcano-glacial location that offers a range of planetary analog environments, including volcanically active regions, extensive lava fields, geothermal springs, and large swaths of ice-covered terrain that are relevant to both rocky and icy planetary bodies. We combined portable VIS (532 nm) and NIR (785 nm) Raman spectroscopy, VIS micro-Raman spectroscopic mapping, and UV/VIS/NIR (200 - 1000 nm) and Mid-IR (5.6 - 10 μm, 1785 - 1000 cm) laser induced breakdown spectroscopy (LIBS) to characterize the mineral assemblages, hydrated components, and biomolecules in rock and sediment samples collected from three main sites in the volcanically active Kverkfjöll-Vatnajökull region of Iceland: basalt and basalt-hosted carbonate rind from Hveragil geothermal stream, volcanic sediments from the base of Vatnajökull glacier at Kverkfjöll, and lava from the nearby Holuhraun lava field. With our combination of techniques, we were able to identify major mineral polytypes typical for each sample set, as well as a large diversity of biomolecules typical for lichen communities across all samples. The anatase we observed using micro-Raman spectroscopic mapping of the lava compared with the volcanic sediment suggested different formation pathways: lava anatase formed authigenically, sediment anatase could have formed in association with microbial weathering. Mn-oxide, only detected in the carbonate samples, seems to have two possible formation pathways, either by fluvial or microbial weathering or both. Even with our ability to detect a wide diversity of biomolecules and minerals in all of the samples, there was not enough variation between each set to distinguish different environments based on the limited measurements done for this study.

摘要

拉曼光谱和激光诱导击穿光谱(LIBS)是互补的技术,它们可以共同提供地质环境的综合特征描述。对于登陆任务,由于对其他行星体上目标材料的访问受限,识别生命和可居住性的特征可能具有挑战性,特别是在限制了包含生命构建块的有机化合物的保存的情况下。任何对自然样本进行光谱测量的主要挑战是复杂的光谱,这些光谱通常包含多个成分的特征,特别是在由几种矿物组成且表面被微生物定殖的岩石中。本研究的目的是利用拉曼光谱和 LIBS 的组合,根据岩石和沉积物中矿物质和生物分子的鉴定,辨别不同的环境状态。冰岛是一个具有多种行星模拟环境的陆地火山-冰川地区,包括火山活跃区、广阔的熔岩场、地热泉和大面积的冰雪覆盖地形,这些都与岩石和冰状行星体有关。我们结合了便携式可见(532nm)和近红外(785nm)拉曼光谱、可见微拉曼光谱测绘以及紫外/可见/近红外(200-1000nm)和中红外(5.6-10μm,1785-1000cm)激光诱导击穿光谱(LIBS),以表征从冰岛火山活跃的 Kverkfjöll-Vatnajökull 地区的三个主要地点采集的岩石和沉积物样品中的矿物组合、水合成分和生物分子:来自 Hveragil 地热溪流的玄武岩和玄武岩中含有的碳酸盐外皮、来自 Vatnajökull 冰川底部的火山沉积物以及来自附近 Holuhraun 熔岩场的熔岩。通过我们的技术组合,我们能够识别每个样本集中典型的主要矿物多型,以及所有样本中典型的多种生物分子。在与火山沉积物相比时,我们通过熔岩的微拉曼光谱测绘观察到的锐钛矿表明存在不同的形成途径:熔岩锐钛矿是自生形成的,而沉积物锐钛矿可能是与微生物风化作用相关形成的。仅在碳酸盐样本中检测到的 Mn 氧化物似乎有两种可能的形成途径,要么是通过河流或微生物风化作用,要么两者兼有。即使我们能够在所有样本中检测到广泛的生物分子和矿物质,但由于本研究的有限测量,每个样本集之间没有足够的差异来区分不同的环境。

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