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小行星伊奥陶卡的有机物和水。

Organic matter and water from asteroid Itokawa.

机构信息

Department of Earth Sciences, Royal Holloway University of London, Egham, TW20 0EX, Surrey, UK.

The Open University, Walton Hall, Milton Keynes, MK7 6AA, UK.

出版信息

Sci Rep. 2021 Mar 4;11(1):5125. doi: 10.1038/s41598-021-84517-x.

Abstract

Understanding the true nature of extra-terrestrial water and organic matter that were present at the birth of our solar system, and their subsequent evolution, necessitates the study of pristine astromaterials. In this study, we have studied both the water and organic contents from a dust particle recovered from the surface of near-Earth asteroid 25143 Itokawa by the Hayabusa mission, which was the first mission that brought pristine asteroidal materials to Earth's astromaterial collection. The organic matter is presented as both nanocrystalline graphite and disordered polyaromatic carbon with high D/H and N/N ratios (δD =  + 4868 ± 2288‰; δN =  + 344 ± 20‰) signifying an explicit extra-terrestrial origin. The contrasting organic feature (graphitic and disordered) substantiates the rubble-pile asteroid model of Itokawa, and offers support for material mixing in the asteroid belt that occurred in scales from small dust infall to catastrophic impacts of large asteroidal parent bodies. Our analysis of Itokawa water indicates that the asteroid has incorporated D-poor water ice at the abundance on par with inner solar system bodies. The asteroid was metamorphosed and dehydrated on the formerly large asteroid, and was subsequently evolved via late-stage hydration, modified by D-enriched exogenous organics and water derived from a carbonaceous parent body.

摘要

要了解我们太阳系诞生时存在的地外水和有机物的真实性质及其后续演化,就必须研究原始的星外物质。在这项研究中,我们研究了隼鸟号任务从近地小行星 25143 丝川表面回收的尘埃颗粒中的水和有机成分,这是首次将原始小行星物质带回地球星外物质收藏的任务。这些有机物表现为纳米级石墨和无定形多环芳烃,具有较高的 D/H 和 N/N 比值(δD = +4868 ± 2288‰;δN = +344 ± 20‰),明确表示其为地外起源。对比有机物特征(石墨质和无定形)证实了丝川的碎石堆小行星模型,并为小行星带中发生的物质混合提供了支持,这种混合发生的规模从小的尘埃沉降到大型小行星母体的灾难性撞击不等。我们对丝川水的分析表明,小行星中含有与内太阳系天体相当的贫 D 水冰。该小行星在原先的大型小行星上经历了变质和脱水,随后通过晚期水合作用进一步演化,受到富含 D 的外源有机物和源自碳质母体的水的影响。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7fa9/7933418/87c1b616c62c/41598_2021_84517_Fig1_HTML.jpg

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