School of Chemistry, Tel Aviv University, Tel Aviv 69978, Israel.
U.S. Department of Agriculture, Agricultural Research Service, Eastern Regional Research Center, 600 East Mermaid Lane, Wyndmoor, PA 10938, USA.
J Chromatogr A. 2020 Feb 8;1612:460691. doi: 10.1016/j.chroma.2019.460691. Epub 2019 Nov 7.
Conventional gas chromatography - mass spectrometry (GC-MS) takes 20-40 min per sample, which is undesirably slow in any application if speed can be increased while still meeting analytical needs. In this study, we achieved reasonably good separations with full analysis cycle times of less than 1 min by combining for the first time low-pressure (LP) GC-MS with low thermal mass (LTM) resistive-heating for rapid temperature ramping and cooling of the capillary column. The analytical column is threaded into the LTM thin-walled metal tubing in an instrumental device known as "LTM Fast GC" that is mounted at the top of the gas chromatograph in a detector port. The column inlet and outlet are connected to the GC injector and MS transfer line as usual. For LPGC-MS, a 40 cm, 0.1 mm. i.d. uncoated flow restrictor capillary connected at the injector is coupled with a 2.6 m, 0.25 mm i.d., 0.25 µm film thickness analytical column leading to the MS. Thus, the inlet operates at normal GC pressures, but the analytical column is under vacuum, which increases the optimal helium carrier gas flow velocity thereby increasing speed of full range separations while maintaining acceptable quality of chromatography. This column configuration in LTM-LPGC-MS trades a 64-fold gain in speed of analysis vs. standard GC-MS for a 4-fold loss in chromatographic peak capacity, thereby converting analysis time from minutes into seconds in common applications. For example, jet fuel containing fatty acid methyl esters (akin to biofuel) was separated in 25 s with <1 min full analysis cycle time. An EPA Method 8270 mixture of 76 analytes was also analyzed in <1 min full cycle time by LTM-LPGC-MS. Other examples include very fast analysis of heroin in a street drug powder and elucidation of a new organic synthetic compound. In this report, we describe and discuss the several advantageous and practical features of LTM-LPGC-MS, as well as its trade-offs.
传统的气相色谱-质谱联用(GC-MS)每次分析样品需要 20-40 分钟,如果能在满足分析需求的同时提高速度,那么在任何应用中,这种速度都是不理想的。在这项研究中,我们首次将低压(LP)GC-MS 与低热质量(LTM)电阻加热相结合,实现了毛细管柱的快速升温/降温,从而实现了不到 1 分钟的全分析周期时间,得到了相当好的分离效果。分析柱被装入一种名为“LTM 快速 GC”的仪器装置中,该装置装在气相色谱仪顶部的检测器端口内。与 GC 进样口和 MS 传输线一样,将柱入口和出口连接到进样口和 MS 传输线。对于 LPGC-MS,在进样口连接一根 40 厘米、0.1 毫米内径、无涂层的限流毛细管,与 2.6 米、0.25 毫米内径、0.25 微米膜厚的分析柱相连,直通 MS。因此,入口处的操作压力与普通 GC 相同,但分析柱处于真空状态,这增加了氦载气的最佳流速,从而在保持色谱质量可接受的前提下,提高了全范围分离的速度。在 LTM-LPGC-MS 中,这种柱配置将分析速度提高了 64 倍,而色谱峰容量则降低了 4 倍,从而将分析时间从分钟缩短到了秒。例如,含有脂肪酸甲酯(类似于生物燃料)的喷气燃料在 25 秒内分离,全分析周期时间不到 1 分钟。LTM-LPGC-MS 还在不到 1 分钟的全周期时间内分析了 EPA 方法 8270 的 76 种混合物。其他例子包括快速分析街头毒品粉末中的海洛因和阐明一种新的有机合成化合物。在本报告中,我们描述并讨论了 LTM-LPGC-MS 的几个有利且实用的特点,以及它的权衡取舍。