René Groß*, Christoph Wetzel, Lei Zheng, Christoph Kahra, Justus Pawlak, Kevin Tran, Maximilian Seydi Kilic, Harald Gaber, Bernhard Roth and Franz Renz,
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In addition, optical and X-ray microscopic (XRM) investigations were carried out, which provided images of the surface and interior of the meteorite, respectively, and further supported the results.For Mössbauer spectroscopy, the miniaturized Mössbauer spectrometer MIMOS II, which has already gained recognition in extraterrestrial research on Mars, was employed for phase determination. This finding serves as a crucial demonstration that the miniaturized Mössbauer spectrometer MIMOS II is well-suited for future space missions and the analysis of extraterrestrial materials.Notably, this study represents a novel application of Mössbauer spectroscopy in the analysis of DAG 400. The present study demonstrates the feasibility of phase assignment through the analysis of DAG 400, and it underscores the potential for further insights through the determination of oxidation states and mineralogical composition. 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引用次数: 0
摘要
世界各地的空间机构都在寻求有前途的分析工具或现有技术的新组合,以扩大我们对外星过程的理解。在使用的仪器的体积、质量、功耗、抗辐射能力和数据传输方面,对地外任务的限制相当高。在这项工作中,Dar al Gani 400陨石(DAG 400)于1998年在利比亚撒哈拉地区的陨石场被发现,被用作利用Mössbauer和拉曼光谱进行地外研究的模型。此外,进行了光学和x射线显微镜(XRM)调查,分别提供了陨石表面和内部的图像,进一步支持了结果。对于Mössbauer光谱,采用小型化的Mössbauer光谱仪MIMOS II进行相测定,该光谱仪已在火星地外研究中获得认可。这一发现至关重要地证明了小型化的Mössbauer光谱仪MIMOS II非常适合未来的太空任务和地外物质的分析。值得注意的是,本研究代表了Mössbauer光谱在DAG 400分析中的新应用。本研究通过DAG 400的分析证明了相分配的可行性,并强调了通过测定氧化态和矿物组成进一步了解的潜力。我们的工作还强调了多模式和互补分析方法在这一领域的关键作用。
Moon Meteorite Dar al Gani 400: Utilizing Mössbauer and Raman Spectroscopy for Extraterrestrial Research
Space agencies worldwide are seeking promising analytical tools or novel combinations of established techniques to broaden our understanding of extraterrestrial processes. The constraints for extraterrestrial missions are quite high in terms of volume, mass, power consumption, radiation resistance and data transmission of the instruments used.In this work, the Dar al Gani 400 meteorite (DAG 400), which was found in 1998 in the respective meteorite field in the Libyan Sahara, is utilized as a model for extraterrestrial research employing Mössbauer and Raman spectroscopy. In addition, optical and X-ray microscopic (XRM) investigations were carried out, which provided images of the surface and interior of the meteorite, respectively, and further supported the results.For Mössbauer spectroscopy, the miniaturized Mössbauer spectrometer MIMOS II, which has already gained recognition in extraterrestrial research on Mars, was employed for phase determination. This finding serves as a crucial demonstration that the miniaturized Mössbauer spectrometer MIMOS II is well-suited for future space missions and the analysis of extraterrestrial materials.Notably, this study represents a novel application of Mössbauer spectroscopy in the analysis of DAG 400. The present study demonstrates the feasibility of phase assignment through the analysis of DAG 400, and it underscores the potential for further insights through the determination of oxidation states and mineralogical composition. Our work also underscores the pivotal role of multimodal and complementary analytical methodologies in this domain.
期刊介绍:
The scope of ACS Earth and Space Chemistry includes the application of analytical, experimental and theoretical chemistry to investigate research questions relevant to the Earth and Space. The journal encompasses the highly interdisciplinary nature of research in this area, while emphasizing chemistry and chemical research tools as the unifying theme. The journal publishes broadly in the domains of high- and low-temperature geochemistry, atmospheric chemistry, marine chemistry, planetary chemistry, astrochemistry, and analytical geochemistry. ACS Earth and Space Chemistry publishes Articles, Letters, Reviews, and Features to provide flexible formats to readily communicate all aspects of research in these fields.