天体生物学
紫外线
火星人
火星探测计划
拉曼光谱
化学
风化土
火星探测
降级(电信)
光化学
环境化学
化学工程
材料科学
光学
光电子学
电信
物理
工程类
计算机科学
作者
Joseph Razzell Hollis,Teresa Fornaro,W. Rapin,Jessica Wade,Á. Vicente‐Retortillo,A. Steele,R. Bhartia,L. W. Beegle
出处
期刊:Astrobiology
[Mary Ann Liebert, Inc.]
日期:2021-01-25
卷期号:21 (5): 511-525
被引量:12
标识
DOI:10.1089/ast.2020.2362
摘要
The search for organic biosignatures on Mars will depend on finding material protected from the destructive ambient radiation. Solar ultraviolet can induce photochemical degradation of organic compounds, but certain clays have been shown to preserve organic material. We examine how the SHERLOC instrument on the upcoming Mars 2020 mission will use deep-ultraviolet (UV) (248.6 nm) Raman and fluorescence spectroscopy to detect a plausible biosignature of adenosine 5′-monophosphate (AMP) adsorbed onto Ca-montmorillonite clay. We found that the spectral signature of AMP is not altered by adsorption in the clay matrix but does change with prolonged exposure to the UV laser over dosages equivalent to 0.2–6 sols of ambient martian UV. For pure AMP, UV exposure leads to breaking of the aromatic adenine unit, but in the presence of clay the degradation is limited to minor alteration with new Raman peaks and increased fluorescence consistent with formation of 2-hydroxyadenosine, while 1 wt % Mg perchlorate increases the rate of degradation. Our results confirm that clays are effective preservers of organic material and should be considered high-value targets, but that pristine biosignatures may be altered within 1 sol of martian UV exposure, with implications for Mars 2020 science operations and sample caching.
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