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实用的无液氮 CO 净化与冷冻技术用于稳定同位素分析。

A Practical Cryogen-Free CO Purification and Freezing Technique for Stable Isotope Analysis.

机构信息

Institute of Biogeosciences, Japan Agency for Marine-Earth Science and Technology , 2-15 Natsushima, Yokosuka, Kanagawa 237-0061, Japan.

Izumo Web Ltd. , 1-3-3 Imachi-cho, Izumo 693-0002, Japan.

出版信息

Anal Chem. 2017 Apr 18;89(8):4409-4412. doi: 10.1021/acs.analchem.7b00544. Epub 2017 Mar 30.

Abstract

Since isotopic analysis by mass spectrometry began in the early 1900s, sample gas for light-element isotopic measurements has been purified by the use of cryogens and vacuum-line systems. However, this conventional purification technique can achieve only certain temperatures that depend on the cryogens and can be sustained only as long as there is a continuous cryogen supply. Here, we demonstrate a practical cryogen-free CO purification technique using an electrical operated cryocooler for stable isotope analysis. This approach is based on portable free-piston Stirling cooling technology and controls the temperature to an accuracy of 0.1 °C in a range from room temperature to -196 °C (liquid-nitrogen temperature). The lowest temperature can be achieved in as little as 10 min. We successfully purified CO gas generated by carbonates and phosphoric acid reaction and found its sublimation point to be -155.6 °C at 0.1 Torr in the vacuum line. This means that the temperature required for CO trapping is much higher than the liquid-nitrogen temperature. Our portable cooling system offers the ability to be free from the inconvenience of cryogen use for stable isotope analysis. It also offers a new cooling method applicable to a number of fields that use gas measurements.

摘要

自 20 世纪初质谱同位素分析开始以来,轻元素同位素测量的样品气体一直通过使用低温和真空线系统进行纯化。然而,这种传统的纯化技术只能达到一定的温度,这些温度取决于低温物质,并且只要有连续的低温物质供应,才能维持。在这里,我们展示了一种实用的无制冷剂 CO 纯化技术,该技术使用电动致冷器进行稳定同位素分析。这种方法基于便携式自由活塞斯特林冷却技术,并将温度控制在 0.1°C 的精度范围内,温度范围从室温到-196°C(液氮温度)。最低温度可在 10 分钟内达到。我们成功地纯化了碳酸盐和磷酸反应产生的 CO 气体,并发现其在真空线中 0.1 托时的升华点为-155.6°C。这意味着 CO 捕集所需的温度远高于液氮温度。我们的便携式冷却系统能够避免使用制冷剂进行稳定同位素分析的不便,它还提供了一种适用于许多使用气体测量的领域的新冷却方法。

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