Smith P A, Sng M T, Eckenrode B A, Leow S Y, Koch D, Erickson R P, Jackson Lepage C R, Hook G L
Naval Medical Center San Diego, Industrial Hygiene Department, San Diego, CA, USA.
J Chromatogr A. 2005 Mar 4;1067(1-2):285-94. doi: 10.1016/j.chroma.2004.11.008.
Gas chromatography-mass spectrometry (GC-MS) is already an important laboratory method, but new sampling techniques and column heating approaches will expand and improve its usefulness for detection and identification of unknown chemicals in field settings. In order to demonstrate commercially-available technical advances for both sampling and column heating, we used solid phase microextraction (SPME) sampling of both water and air systems, followed by immediate analysis with a resistively heated analytical column and mass spectrometric detection. High-concern compounds ranging from 140 to 466 amu were analyzed to show the applicability of these techniques to emergency situations impacting public health. A field portable (about 35 kg) GC-MS system was used for analysis of water samples with a resistively heated analytical column externally mounted as a retrofit using the air bath oven of the original instrument design to heat transfer lines. The system used to analyze air samples included a laboratory mass spectrometer with a dedicated resistive column heating arrangement (no legacy air bath column oven). The combined sampling and analysis time was less than 10 min for both air and water sample types. By combining dedicated resistive column heating with smaller mass spectrometry systems designed specificallyfor use in the field, substantially smaller high performance field-portable instrumentation will be possible.
气相色谱 - 质谱联用(GC-MS)已经是一种重要的实验室方法,但新的采样技术和柱加热方法将扩展并提高其在现场环境中检测和识别未知化学物质的实用性。为了展示采样和柱加热方面的商用技术进展,我们对水和空气系统都采用了固相微萃取(SPME)采样,随后使用电阻加热分析柱和质谱检测进行即时分析。分析了质量数在140至466之间的高关注化合物,以表明这些技术在影响公众健康的紧急情况下的适用性。使用了一个现场便携式(约35千克)GC-MS系统,通过利用原始仪器设计的空气浴烘箱对传输线进行加热,将电阻加热分析柱作为外部改装部件来分析水样。用于分析空气样品的系统包括一台配备专用电阻柱加热装置的实验室质谱仪(无传统的空气浴柱烘箱)。对于空气和水样类型,采样和分析的总时间均少于10分钟。通过将专用电阻柱加热与专门为现场使用设计的小型质谱系统相结合,将有可能实现体积更小的高性能现场便携式仪器。