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首页> 外文期刊>Rapid Communications in Mass Spectrometry: RCM >On the calibration of continuous, high-precision delta O-18 and delta H-2 measurements using an off-axis integrated cavity output spectrometer
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On the calibration of continuous, high-precision delta O-18 and delta H-2 measurements using an off-axis integrated cavity output spectrometer

机译:使用离轴集成腔输出光谱仪校准连续,高精度增量O-18和增量H-2测量

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The O-18 and H-2 of water vapor serve as powerful tracers of hydrological processes. The typical method for determining water vapor delta O-18 and delta H-2 involves cryogenic trapping and isotope ratio mass spectrometry. Even with recent technical advances, these methods cannot resolve vapor composition at high temporal resolutions. In recent years, a few groups have developed continuous laser absorption spectroscopy (LAS) approaches for measuring delta O-18 and delta H-2 which achieve accuracy levels similar to those of lab-based mass spectrometry methods. Unfortunately, most LAS systems need cryogenic cooling and constant calibration to a reference gas, and have substantial power requirements, making them unsuitable for long-term field deployment at remote field sites. A new method called Off-Axis Integrated Cavity Output Spectroscopy (OA-ICOS) has been developed which requires extremely low-energy consumption and neither reference gas nor cryogenic cooling. In this report, we develop a relatively simple pumping system coupled to a dew point generator to calibrate an ICOS-based instrument (Los Gatos Research Water Vapor Isotope Analyzer (WVIA) DLT-100) under various pressures using liquid water with known isotopic signatures. Results show that the WVIA can be successfully calibrated using this customized system for different pressure settings, which ensure that this instrument can be combined with other gas-sampling systems. The precisions of this instrument and the associated calibration method can reach similar to 0.08 parts per thousand. for delta O-18 and similar to 0.4 parts per thousand for delta H-2. Compared with conventional mass spectrometry and other LAS-based methods, the OA-ICOS technique provides a promising alternative tool for continuous water vapor isotopic measurements in field deployments. Copyright (C) 2009 John Wiley & Sons, Ltd.
机译:水蒸气的O-18和H-2是水文过程的有力示踪剂。确定水蒸气δO-18和δH-2的典型方法包括低温​​捕集和同位素比质谱法。即使有了最新的技术进步,这些方法也无法在高时间分辨率下解析蒸汽成分。近年来,少数小组开发了用于测量δO-18和δH-2的连续激光吸收光谱(LAS)方法,其达到的精确度与基于实验室的质谱法相似。不幸的是,大多数LAS系统需要低温冷却和对参考气体的恒定校准,并且具有相当大的功率要求,因此不适合在偏远现场现场进行长期现场部署。已经开发出一种称为离轴集成腔输出光谱(OA-ICOS)的新方法,该方法需要极低的能耗,既不需要参考气体,也不需要低温冷却。在本报告中,我们开发了一个相对简单的泵系统,该泵系统与露点发生器相连,以使用已知同位素特征的液态水在各种压力下校准基于ICOS的仪器(Los Gatos研究型水蒸气同位素分析仪(WVIA)DLT-100)。结果表明,可以使用此定制系统针对不同的压力设置成功校准WVIA,从而确保该仪器可以与其他气体采样系统结合使用。该仪器的精度和相关的校准方法可以达到千分之0.08。对于O-18而言,对于H-2而言约为千分之0.4。与常规质谱法和其他基于LAS的方法相比,OA-ICOS技术为现场部署中的连续水蒸气同位素测量提供了一种有前途的替代工具。版权所有(C)2009 John Wiley&Sons,Ltd.

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