Remote Determination of Martian Chloride Salt Abundances

IF 4 1区 地球科学 Q1 GEOCHEMISTRY & GEOPHYSICS Journal of Geophysical Research: Planets Pub Date : 2025-03-10 DOI:10.1029/2024JE008541
Eashan Das, Timothy D. Glotch, Christopher S. Edwards, Cheng Ye, Ralph E. Milliken, A. Deanne Rogers, Lars Ehm, Kristen Norberg
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Abstract

Chloride salt-bearing deposits are widely distributed across the southern highlands of Mars. Because chloride salts are highly water-soluble, these deposits may be representative of the last significant period of stable liquid water at the Martian surface. Therefore, these deposits are key to understanding the fate and evolution of surface waters on Mars. However, little consensus exists about the formation conditions of these deposits, and their origins remain enigmatic. This is due in part because remote spectroscopic detection and quantification of many anhydrous chlorides is hampered by a lack of easily discernible diagnostic absorption features. To address this issue, we present a novel Hapke radiative transfer model-based method to estimate hydration states and salt abundances of Martian chloride salt-bearing deposits using visible/near-infrared (VNIR) reflectance spectra. VNIR laboratory spectra are used to derive water abundances of analog chloride-bearing materials, establishing an experimental basis for application of these methods to Mars. These methods are then applied to orbital Compact Reconnaissance Imaging Spectrometer for Mars data to create maps of the hydration state and modeled salt abundance of chloride-bearing deposits. When overlain onto high resolution 3D digital terrain models, these methods produce the highest resolution site-specific salt abundance maps currently available, enhancing our understanding of chloride deposit geologic context. As an example, deposits in the Terra Sirenum region are observed to have higher estimated salt abundances than previously recognized, exhibiting spatial variations in both abundance and surface morphology.

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火星氯盐丰度的远程测定
含氯盐矿床广泛分布在火星南部高地。因为氯盐是高度水溶性的,这些沉积物可能代表了火星表面稳定液态水的最后一个重要时期。因此,这些沉积物是了解火星表面水的命运和演化的关键。然而,关于这些矿床的形成条件,人们几乎没有共识,它们的起源仍然是一个谜。这部分是由于许多无水氯化物的远程光谱检测和定量由于缺乏易于识别的诊断吸收特征而受到阻碍。为了解决这一问题,我们提出了一种基于Hapke辐射传输模型的新方法,利用可见/近红外(VNIR)反射光谱来估计火星氯盐矿床的水化状态和盐丰度。利用近红外实验室光谱计算模拟含氯物质的水丰度,为这些方法在火星上的应用奠定了实验基础。然后将这些方法应用于轨道紧凑型侦察成像光谱仪获取火星数据,以创建水化状态的地图,并模拟含氯化物矿床的盐丰度。当叠加到高分辨率3D数字地形模型上时,这些方法产生了目前可用的最高分辨率的特定地点盐丰度图,增强了我们对氯化物矿床地质背景的理解。例如,观察到Terra Sirenum地区的矿床具有比以前认识到的更高的估计盐丰度,在丰度和表面形态上都表现出空间变化。
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来源期刊
Journal of Geophysical Research: Planets
Journal of Geophysical Research: Planets Earth and Planetary Sciences-Earth and Planetary Sciences (miscellaneous)
CiteScore
8.00
自引率
27.10%
发文量
254
期刊介绍: The Journal of Geophysical Research Planets is dedicated to the publication of new and original research in the broad field of planetary science. Manuscripts concerning planetary geology, geophysics, geochemistry, atmospheres, and dynamics are appropriate for the journal when they increase knowledge about the processes that affect Solar System objects. Manuscripts concerning other planetary systems, exoplanets or Earth are welcome when presented in a comparative planetology perspective. Studies in the field of astrobiology will be considered when they have immediate consequences for the interpretation of planetary data. JGR: Planets does not publish manuscripts that deal with future missions and instrumentation, nor those that are primarily of an engineering interest. Instrument, calibration or data processing papers may be appropriate for the journal, but only when accompanied by scientific analysis and interpretation that increases understanding of the studied object. A manuscript that describes a new method or technique would be acceptable for JGR: Planets if it contained new and relevant scientific results obtained using the method. Review articles are generally not appropriate for JGR: Planets, but they may be considered if they form an integral part of a special issue.
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