Reactive Iron Mineral Phases on Mars: Implications for Organic Carbon Preservation.

IF 2.3 3区 物理与天体物理 Q2 ASTRONOMY & ASTROPHYSICS
Emily Bonsall, Eileen Tisdall, Christian Schröder
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Abstract

It is estimated that ∼20% of organic carbon stored in sediments on Earth is bound to reactive iron minerals. They often occur as nanoparticulate or X-ray amorphous iron (hydr)oxides, which are challenging to identify with mineralogical techniques-especially those that require any type of heating, which also makes them susceptible to alteration in response to diagenetic processes. Reactive iron species have been identified on Mars in the form of nanophase ferric oxides in Gusev crater and at Meridiani Planum with Spirit's and Opportunity's Mössbauer spectrometers, respectively, and as Fe-rich amorphous material in Gale crater with Curiosity's CheMin X-ray diffraction channel. Here, we use the amount of reactive iron minerals and geochemical evidence for diagenetic processes to assess the relative preservation potential of sedimentary rocks at these three landing sites. Sedimentary rocks in Gale crater show the highest preservation potential, and organic carbon compounds have been identified in these rocks. Sedimentary rocks in Gusev crater show equally high preservation potential. However, reactive Fe minerals can also react with organic carbon when heat is added during pyrolysis and laser desorption. These effects need to be considered to determine accurately the organic carbon inventory measured during current and future missions as well as in returned samples.

火星上的活性铁矿物相:有机碳保存的意义。
据估计,地球沉积物中储存的有机碳中约有20%与活性铁矿物结合。它们通常以纳米颗粒或x射线无定形铁(水合)氧化物的形式出现,这对矿物学技术的识别具有挑战性,特别是那些需要任何类型的加热的技术,这也使它们容易受到成岩过程的改变。在火星上,“勇气号”和“机遇号”的Mössbauer光谱仪分别在Gusev陨石坑和Meridiani Planum发现了纳米态氧化铁,而“好奇号”的CheMin x射线衍射通道则发现了盖尔陨石坑中富含铁的无定形物质。在这里,我们利用活性铁矿物的数量和成岩过程的地球化学证据来评估这三个着陆点沉积岩的相对保存潜力。盖尔陨石坑的沉积岩显示出最高的保存潜力,并且在这些岩石中发现了有机碳化合物。古谢夫陨石坑的沉积岩同样具有很高的保存潜力。然而,在热解和激光解吸过程中加热时,活性铁矿物也可以与有机碳发生反应。需要考虑这些影响,以准确地确定在当前和未来的任务期间以及在返回的样品中测量的有机碳库存。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Astrobiology
Astrobiology 生物-地球科学综合
CiteScore
7.70
自引率
11.90%
发文量
100
审稿时长
3 months
期刊介绍: Astrobiology is the most-cited peer-reviewed journal dedicated to the understanding of life''s origin, evolution, and distribution in the universe, with a focus on new findings and discoveries from interplanetary exploration and laboratory research. Astrobiology coverage includes: Astrophysics; Astropaleontology; Astroplanets; Bioastronomy; Cosmochemistry; Ecogenomics; Exobiology; Extremophiles; Geomicrobiology; Gravitational biology; Life detection technology; Meteoritics; Planetary geoscience; Planetary protection; Prebiotic chemistry; Space exploration technology; Terraforming
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