首页> 外文期刊>Rapid Communications in Mass Spectrometry: RCM >Microwave extraction–isotope ratio infrared spectroscopy (ME-IRIS): a novel technique for rapid extraction and in-line analysis of δ18O and δ~2H values of water in plants, soils and insects
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Microwave extraction–isotope ratio infrared spectroscopy (ME-IRIS): a novel technique for rapid extraction and in-line analysis of δ18O and δ~2H values of water in plants, soils and insects

机译:微波萃取-同位素比红外光谱法(ME-IRIS):一种用于植物,土壤和昆虫中水的δ18O和δ〜2H值的快速提取和在线分析的新技术

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RATIONALE: Traditionally, stable isotope analysis of plant and soil water has been a technically challenging, labourintensive and time-consuming process. Here we describe a rapid single-step technique which combines Microwave Extraction with Isotope Ratio Infrared Spectroscopy (ME-IRIS). METHODS: Plant, soil and insect water is extracted into a dry air stream by microwave irradiation within a sealed vessel. The water vapor thus produced is carried to a cooled condensation chamber, which controls the water vapor concentration and flow rate to the spectrometer. Integration of the isotope signals over the whole analytical cycle provides quantitative δ~(18)O and δ~2H values for the initial liquid water contained in the sample. Calibration is carried out by the analysis of water standards using the same apparatus. Analysis of leaf and soil water by cryogenic vacuum distillation and IRMS was used to validate the ME-IRIS data. RESULTS: Comparison with data obtained by cryogenic distillation and IRMS shows that the new technique provides accurate water isotope data for leaves from a range of field-grown tropical plant species. However, two exotic nursery plants were found to suffer from spectral interferences from co-extracted organic compounds. The precision for extracted leaf, stem, soil and insect water was typically better than ±0.3 ‰ for δ~(18)O and ±2 ‰ for δ~2H values, and better than ±0.1 ‰ for δ~(18)O and ±1 ‰ for δ~2H values when analyzing water standards. The effects of sample size, microwave power and duration and sample-to-sample memory on isotope values were assessed. CONCLUSIONS: ME-IRIS provides rapid and low-cost extraction and analysis of δ~(18)O and δ~2H values in plant, soil and insect water (≈10–15 min for samples yielding≈0.3 mL of water). The technique can accommodate whole leaves of many plant species.
机译:理由:传统上,对植物和土壤水进行稳定的同位素分析一直是技术难题,劳动强度大且耗时的过程。在这里,我们描述了一种结合微波萃取与同位素比率红外光谱(ME-IRIS)的快速单步技术。方法:在密封容器中通过微波辐射将植物,土壤和昆虫水提取到干燥的空气流中。这样产生的水蒸气被送入冷却的冷凝室,冷凝室控制水蒸气的浓度和流向光谱仪的流速。在整个分析周期中,同位素信号的积分提供了样品中初始液态水的定量δ〜(18)O和δ〜2H值。通过使用同一设备分析水标准进行校准。通过低温真空蒸馏和IRMS对叶片和土壤水进行分析,以验证ME-IRIS数据。结果:与通过低温蒸馏和IRMS获得的数据进行比较,结果表明,该新技术为来自多种田间种植的热带植物物种的叶片提供了准确的水同位素数据。但是,发现两个外来苗圃植物受到共萃取有机化合物的光谱干扰。提取的叶,茎,土壤和昆虫水的精度对于δ〜(18)O而言通常优于±0.3‰,对于δ〜2H值则优于±2‰,对于δ〜(18)O和δ〜(18)O优于±0.1‰。分析水标准时的δ〜2H值为±1‰。评估了样品大小,微波功率和持续时间以及样品间记忆对同位素值的影响。结论:ME-IRIS可快速,低成本地提取和分析植物,土壤和昆虫水中的δ〜(18)O和δ〜2H值(对于产生约0.3mL水的样品,约需10-15分钟)。该技术可以容纳许多植物物种的整片叶子。

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