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Measurement of rare isotopologues of nitrous oxide by high-resolution multi-collector mass spectrometry

机译:高分辨率多收集器质谱法测量一氧化二氮的稀有同位素

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摘要

Rationale: Bulk and position-specific stable isotope characterization of nitrous oxide represents one of the most powerful tools for identifying its environmental sources and sinks. Constraining ^(14)N^(15)N^(18)O and ^(15)N^(14)N^(18)O will add two new dimensions to our ability to uniquely fingerprint N_2O sources. ududMethods: We describe a technique to measure six singly and doubly substituted isotopic variants of N2O, constraining the values of δ^(15)N, δ^(18)O, ∆^(17)O, ^(15)N site preference, and the clumped isotopomers ^(14)N^(15)N^(18)O and ^(15)N^(14)N^(18)O. The technique uses a Thermo MAT 253 Ultra, a high-resolution multi-collector gas source isotope ratio mass spectrometer. It requires 8–10 hours per sample and ~10 micromoles or more of pure N_2O. ududResults: We demonstrate the precision and accuracy of these measurements by analyzing N_2O brought to equilibrium in its position-specific and clumped isotopic composition by heating in the presence of a catalyst. Finally, an illustrative analysis of biogenic N_2O from a denitrifying bacterium suggests that its clumped isotopic composition is controlled by kinetic isotope effects in N_2O production. ududConclusions: We developed a method for measuring six isotopic variants of N_2O and tested it with analyses of biogenic N_2O. The added isotopic constraints provided by these measurements will enhance our ability to apportion N_2O sources.
机译:理由:一氧化二氮的体积和特定位置的稳定同位素表征是识别其环境来源和汇的最有力工具之一。约束^(14)N ^(15)N ^(18)O和^(15)N ^(14)N ^(18)O将为我们唯一识别N_2O源的能力增加两个新维度。 ud udMethods:我们描述了一种测量N2O的六个单双取代同位素变体的技术,用于约束δ^(15)N,δ^(18)O,∆ ^(17)O,^(15)的值N位点偏好,和成簇的异构体^(14)N ^(15)N ^(18)O和^(15)N ^(14)N ^(18)O。该技术使用Thermo MAT 253 Ultra,这是一种高分辨率的多收集器气体源同位素比质谱仪。每个样品需要8–10个小时,大约需要10摩尔或更多的纯N_2O。 ud ud结果:我们通过分析在催化剂存在下加热使N_2O达到特定位置的平衡同位素组成和成团的同位素组成,从而证明了这些测量的准确性和准确性。最后,对反硝化细菌产生的生物N_2O的说明性分析表明,其结块的同位素组成受N_2O产生中的动力学同位素效应控制。 ud ud结论:我们开发了一种用于测量N_2O的六个同位素变体的方法,并通过对生物N_2O的分析对其进行了测试。这些测量提供的附加同位素约束将增强我们分配N_2O源的能力。

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