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Synchrotron-Based Mass Spectrometry to Investigate the Molecular Properties of Mineral-Organic Associations

机译:基于同步加速器的质谱研究矿物-有机缔合的分子性质

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摘要

Soil organic matter (SOM) is important because its decay drives life processes in the biosphere. Analysis of organic compounds in geological systems is difficult because of their intimate association with mineral surfaces. To date there is no procedure capable of quantitatively separating organic from mineral phases without creating artifacts or mass loss. Therefore, analytical techniques that can (a) generate information about both organic and mineral phases simultaneously and (b) allow the examination of predetermined high-interest regions of the sample as opposed to conventional bulk analytical techniques are valuable. Laser desorption synchrotron postionization (synchrotron-LDPI) mass spectrometry is introduced as a novel analytical tool to characterize the molecular properties of organic compounds in mineral-organic samples from terrestrial systems, and it is demonstrated that, when combined with secondary ion mass spectrometry (SIMS), it can provide complementary information on mineral composition. Mass spectrometry along a decomposition gradient in density fractions verifies the consistency of our results with bulk analytical techniques. We further demonstrate that, by changing laser and photoionization energies, variations in molecular stability of organic compounds associated with mineral surfaces can be determined. The combination of synchrotron-LDPI and SIMS shows that the energetic conditions involved in desorption and ionization of organic matter may be a greater determinant of mass spectral signatures than the inherent molecular structure of the organic compounds investigated. The latter has implications for molecular models of natural organic matter that are based on mass spectrometric information.
机译:土壤有机物(SOM)很重要,因为它的腐烂推动了生物圈的生命过程。地质系统中的有机化合物很难分析,因为它们与矿物表面密切相关。迄今为止,还没有能够定量地将有机物与矿物质相分离而不会造成伪影或质量损失的程序。因此,与传统的批量分析技术相比,能够(a)同时生成有关有机相和矿物相的信息以及(b)允许检查样品的预定高兴趣区域的分析技术是有价值的。引入激光解吸同步加速器去离子化(synchrotron-LDPI)质谱作为表征地面系统矿物有机样品中有机化合物分子特性的新型分析工具,并证明与二次离子质谱(SIMS)结合使用),可以提供有关矿物成分的补充信息。沿密度分数分解梯度进行的质谱分析验证了我们的结果与本体分析技术的一致性。我们进一步证明,通过改变激光和光电离能,可以确定与矿物表面有关的有机化合物分子稳定性的变化。同步加速器-LDPI和SIMS的组合显示,与所研究的有机化合物的固有分子结构相比,参与有机物解吸和离子化的高能条件可能是质谱特征的更大决定因素。后者对基于质谱信息的天然有机物质的分子模型有影响。

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