论文标题

Orgueil(CI)和EET 92042(CR)碳质软管中的纳米级矿物学和有机结构使用AFM-IR光谱研究

Nanoscale mineralogy and organic structure in Orgueil (CI) and EET 92042 (CR) carbonaceous chondrites studied with AFM-IR spectroscopy

论文作者

Phan, Van T. H., Rebois, Rolando, Beck, Pierre, Quirico, Eric, Bonal, Lydie, Noguchi, Takaaki

论文摘要

来自原始软骨的陨石矩阵是亚微米量表上成分的相互作用,它需要具有纳米空间分辨率的分析技术,以破译岩石学环境中各个组件的组成。红外光谱是一种有效的方法,可以在有机和无机化合物的分子原子量表上进行振动探测,但通常仅限于空间分辨率的几微米。为了有效区分不同成分的光谱特征,我们基于红外和原子力显微镜的组合,在此应用纳米IR光谱(AFM-IR),其空间分辨率超出了衍射极限。我们的研究旨在表征两个选择的陨石样品,以根据散装化学(CI软骨晶)和有机成分(CR Condrite Eet 92042)研究原始材料。我们确认该技术允许将有机物和矿物质的IR特征混合在一起,以评估这些样品中有机结构的变异性。我们报告了对广泛使用的化学HF/HCL(氟化氢/盐酸氢)提取对难治性有机物性质(不溶性有机物,IOM)性质的影响的研究,并通过将这两种样品与参考(额外的)陆层材料进行比较,从而提供了有关两种样品的陨石矩阵矿物质学的见解。讨论了这些发现的观点,以理解后核后水位改变和热变质对软骨组成的影响。最后,我们强调说,陨石材料内有机物的异质性延伸至纳米级,与Ioms相比,含氧化学基团不受酸提取物的影响。

Meteorite matrices from primitive chondrites are an interplay of ingredients at the sub-micron scale, which requires analytical techniques with the nanometer spatial resolution to decipher the composition of individual components in their petrographic context. Infrared spectroscopy is an effective method that enables to probe of vibrations at the molecule-atomic scale of organic and inorganic compounds but is often limited to a few micrometers in spatial resolution. To efficiently distinguish spectral signatures of the different constituents, we apply here nano-IR spectroscopy (AFM-IR), based on the combination of infrared and atomic force microscopy, having a spatial resolution beyond the diffraction limits. Our study aims to characterize two chosen meteorite samples to investigate primitive material in terms of bulk chemistry (the CI chondrite Orgueil) and organic composition (the CR chondrite EET 92042). We confirm that this technique allows unmixing the IR signatures of organics and minerals to assess the variability of organic structure within these samples. We report an investigation of the impact of the widely used chemical HF/HCl (Hydrogen Fluoride/Hydrochloric) extraction on the nature of refractory organics (Insoluble Organic Matter, IOM) and provide insights on the mineralogy of meteorites matrices from these two samples by comparing to reference (extra)terrestrial materials. These findings are discussed with a perspective toward understanding the impact of post-accretional aqueous alteration and thermal metamorphism on the composition of chondrites. Last, we highlight that the heterogeneity of organic matter within meteoritic materials extends down to the nanoscale, and by comparison with IOMs, oxygenated chemical groups are not affected by acid extractions.

扫码加入交流群

加入微信交流群

微信交流群二维码

扫码加入学术交流群,获取更多资源