Centre for Stable Isotope Research and Analysis, University of Göttingen, Göttingen, 37077, Germany.
Thünen-Institute of Climate-Smart Agriculture, Bundesallee 50, Braunschweig, 38116, Germany.
Rapid Commun Mass Spectrom. 2021 May 30;35(10):e9077. doi: 10.1002/rcm.9077.
Existing methods for the measurement of the N/ N isotopic composition of ammonium and nitrate are either only suitable for labelled samples or require considerable sample preparation efforts (or both). Our goal was to modify an existing analytical approach to allow for natural abundance precision levels.
Published reaction protocols were used to convert ammonium into N by NaOBr and nitrate into N O by TiCl . A membrane inlet system was developed and coupled to an isotope ratio mass spectrometer to allow precise determination of the analytes.
Concentrations of ≥35 μmol/L N for both ammonium or nitrate could be analysed for δ N values with precisions of better than 0.9 mUr. While ammonium analyses exhibited a small concentration dependency and an offset of 2.7 mUr at high ammonium concentrations irrespective of the standard isotopic composition, nitrate analysis showed no offset but a blank contribution visible at very low concentrations.
The presented method is capable of fast measurement of δ N values in ammonium and nitrate from aqueous samples with reasonable accuracy at natural abundance levels. It will thus facilitate the application of isotopic methods to studies of nitrogen cycling in ecosystems.
现有的铵态氮和硝态氮的 N/N 同位素组成测量方法要么只适用于标记样本,要么需要大量的样品制备工作(或两者兼而有之)。我们的目标是改进现有的分析方法,以达到自然丰度的精度水平。
使用已发表的反应方案,将铵态氮通过 NaOBr 转化为 N,将硝态氮通过 TiCl3 转化为 N O。开发了一种膜入口系统,并与同位素质谱仪耦合,以允许对分析物进行精确测定。
对于铵态氮或硝态氮,浓度≥35 μmol/L 的 N 都可以进行 δ N 值分析,其精度优于 0.9 mUr。尽管铵态氮分析显示出较小的浓度依赖性和在高铵态氮浓度下无论标准同位素组成如何都会有 2.7 mUr 的偏移,但硝态氮分析没有偏移,但在极低浓度下可以看到空白贡献。
所提出的方法能够快速测量水样中铵态氮和硝态氮的 δ N 值,在自然丰度水平下具有合理的准确性。因此,它将促进同位素方法在生态系统氮循环研究中的应用。