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月球条件下有机物质对辐射的响应。

Organic Matter Responses to Radiation under Lunar Conditions.

作者信息

Matthewman Richard, Crawford Ian A, Jones Adrian P, Joy Katherine H, Sephton Mark A

机构信息

1 Impacts and Astromaterials Research Centre, Department of Earth Science and Engineering, Imperial College London , London, UK.

2 Department of Earth and Planetary Sciences, Birkbeck College, University of London , London, UK.

出版信息

Astrobiology. 2016 Nov;16(11):900-912. doi: 10.1089/ast.2015.1442.

Abstract

Large bodies, such as the Moon, that have remained relatively unaltered for long periods of time have the potential to preserve a record of organic chemical processes from early in the history of the Solar System. A record of volatiles and impactors may be preserved in buried lunar regolith layers that have been capped by protective lava flows. Of particular interest is the possible preservation of prebiotic organic materials delivered by ejected fragments of other bodies, including those originating from the surface of early Earth. Lava flow layers would shield the underlying regolith and any carbon-bearing materials within them from most of the effects of space weathering, but the encapsulated organic materials would still be subject to irradiation before they were buried by regolith formation and capped with lava. We have performed a study to simulate the effects of solar radiation on a variety of organic materials mixed with lunar and meteorite analog substrates. A fluence of ∼3 × 10 protons cm at 4-13 MeV, intended to be representative of solar energetic particles, has little detectable effect on low-molecular-weight (≤C) hydrocarbon structures that can be used to indicate biological activity (biomarkers) or the high-molecular-weight hydrocarbon polymer poly(styrene-co-divinylbenzene), and has little apparent effect on a selection of amino acids (≤C). Inevitably, more lengthy durations of exposure to solar energetic particles may have more deleterious effects, and rapid burial and encapsulation will always be more favorable to organic preservation. Our data indicate that biomarker compounds that may be used to infer biological activity on their parent planet can be relatively resistant to the effects of radiation and may have a high preservation potential in paleoregolith layers on the Moon. Key Words: Radiation-Moon-Regolith-Amino acids-Biomarkers. Astrobiology 16, 900-912.

摘要

像月球这样长期保持相对不变的大型天体,有可能保存太阳系早期有机化学过程的记录。挥发性物质和撞击体的记录可能保存在被保护性熔岩流覆盖的埋藏月壤层中。特别令人感兴趣的是,其他天体(包括那些源自早期地球表面的天体)抛出的碎片所携带的益生元有机物质可能得以保存。熔岩流层会保护其下方的月壤及其内部的任何含碳物质免受大部分空间风化作用的影响,但被包裹的有机物质在被月壤形成掩埋并用熔岩覆盖之前,仍会受到辐射。我们进行了一项研究,以模拟太阳辐射对与月球和陨石类似基质混合的各种有机物质的影响。4 - 13 MeV下约3×10质子/平方厘米的注量,旨在代表太阳高能粒子,对可用于指示生物活性的低分子量(≤C)烃类结构(生物标志物)或高分子量烃类聚合物聚(苯乙烯 - 共 - 二乙烯基苯)几乎没有可检测到的影响,对所选的氨基酸(≤C)也几乎没有明显影响。不可避免的是,更长时间暴露于太阳高能粒子可能会产生更有害的影响,而快速掩埋和包裹总是更有利于有机物质的保存。我们的数据表明,可用于推断其母行星上生物活性的生物标志物化合物可能对辐射影响具有相对抗性,并且在月球古月壤层中可能具有很高的保存潜力。关键词:辐射 - 月球 - 月壤 - 氨基酸 - 生物标志物。《天体生物学》16卷,900 - 912页。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/00c9/5273402/6ac656299cf5/fig-1.jpg

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