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检测陆地大气碳酸盐中的氧同位素异常及其对火星的影响。

Detection of oxygen isotopic anomaly in terrestrial atmospheric carbonates and its implications to Mars.

机构信息

Department of Chemistry and Biochemistry, University of California at San Diego, 9500 Gilman Drive, La Jolla, CA 92093, USA.

出版信息

Proc Natl Acad Sci U S A. 2010 Nov 23;107(47):20213-8. doi: 10.1073/pnas.1014399107. Epub 2010 Nov 8.

Abstract

The debate of life on Mars centers around the source of the globular, micrometer-sized mineral carbonates in the ALH84001 meteorite; consequently, the identification of Martian processes that form carbonates is critical. This paper reports a previously undescribed carbonate formation process that occurs on Earth and, likely, on Mars. We identified micrometer-sized carbonates in terrestrial aerosols that possess excess (17)O (0.4-3.9‰). The unique O-isotopic composition mechanistically describes the atmospheric heterogeneous chemical reaction on aerosol surfaces. Concomitant laboratory experiments define the transfer of ozone isotopic anomaly to carbonates via hydrogen peroxide formation when O(3) reacts with surface adsorbed water. This previously unidentified chemical reaction scenario provides an explanation for production of the isotopically anomalous carbonates found in the SNC (shergottites, nakhlaites, chassignites) Martian meteorites and terrestrial atmospheric carbonates. The anomalous hydrogen peroxide formed on the aerosol surfaces may transfer its O-isotopic signature to the water reservoir, thus producing mass independently fractionated secondary mineral evaporites. The formation of peroxide via heterogeneous chemistry on aerosol surfaces also reveals a previously undescribed oxidative process of utility in understanding ozone and oxygen chemistry, both on Mars and Earth.

摘要

火星生命的争论焦点集中在 ALH84001 陨石中球形、微米大小的矿物碳酸盐的来源上;因此,确定形成碳酸盐的火星过程至关重要。本文报告了一种以前在地球上和可能在火星上尚未描述的碳酸盐形成过程。我们在地球气溶胶中发现了具有过量 (17)O(0.4-3.9‰)的微米大小的碳酸盐。独特的氧同位素组成从机制上描述了气溶胶表面上的大气非均相化学反应。伴随的实验室实验定义了当 O(3)与表面吸附水反应时,通过过氧化氢形成将臭氧同位素异常转移到碳酸盐中的过程。这种以前未被识别的化学反应方案为在 SNC(Shergottites、nakhlaites、chassignites)火星陨石和地球大气碳酸盐中发现的同位素异常碳酸盐的产生提供了一种解释。在气溶胶表面上形成的异常过氧化氢可能会将其氧同位素特征转移到水库中,从而产生质量独立分馏的次生矿物蒸发盐。气溶胶表面上通过非均相化学形成过氧化物也揭示了一种以前未描述的氧化过程,对于理解火星和地球上的臭氧和氧气化学都很有用。

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