Biagini Denise, Lomonaco Tommaso, Ghimenti Silvia, Onor Massimo, Bellagambi Francesca G, Salvo Pietro, Di Francesco Fabio, Fuoco Roger
Department of Chemistry and Industrial Chemistry, University of Pisa, Via Giuseppe Moruzzi 13, Pisa, Italy.
Department of Chemistry and Industrial Chemistry, University of Pisa, Via Giuseppe Moruzzi 13, Pisa, Italy.
Talanta. 2019 Aug 1;200:145-155. doi: 10.1016/j.talanta.2019.03.046. Epub 2019 Mar 12.
When working with humid gaseous samples, the amount of water vapour collected in a needle trap along with volatile analytes may vary from sample to sample and decrease during the storage. This has a major impact on desorption efficiency and recovery. We propose the addition of a labelled internal standards to nullify the effect of variable humidity on the analytical performance of needle trap micro-extraction combined with gas chromatography mass spectrometry. Triple-bed (Divinylbenzene/Carbopack X/Carboxen 1000) and single-bed (Tenax GR) needles were tested with standard gaseous mixtures prepared at different relative humidity levels (85%, 50% and 10%). The standard mixtures contained twenty-five analytes representative of breath and ambient air constituents, including hydrocarbons, ketones, aldehydes, aromatics, and sulphurs, in the concentration range 0.1-700 ppbv. The two needles showed different behaviours, as recovery was independent of humidity for single-beds, whereas a low recovery (10-20%) was observed when triple-beds trapped very volatile compounds at low humidity (e.g. pentane and ethanol, 10% relative humidity. Triple-beds showed an almost quantitative recovery (>90%) of all the analytes at 50% and 85% relative humidity. This big difference was probably due to the reduced action of water vapour pressure during the desorption step. The addition of D-acetone and D-toluene to the sorbent material before gas sampling and the normalization of raw data nullified this effect, thereby lowering the variations of analyte recovery at different humidity levels down to 20%. Internal standards were also exploited to limit within 10-20% alterations in peak areas of very volatile compounds during needle storage at room temperature. This variation may results from a loss of water vapour either retained from the sorbent material and/or condensed on triple-bed needle walls. After normalization, the inter- and intra-day precision were halved to 5% and 10% in the case of single-beds, respectively, and to 15% and 20% with three-beds. The addition of an internal standard to the sorbent helps to keep the overall analytical procedure under control and improves the reliability of needle trap micro-extraction for the analysis of volatile organic compounds at ultra-trace levels.
在处理潮湿气态样品时,针捕集阱中与挥发性分析物一起收集的水蒸气量可能因样品而异,并且在储存过程中会减少。这对解吸效率和回收率有重大影响。我们建议添加标记内标,以消除湿度变化对针捕集阱微萃取结合气相色谱 - 质谱分析性能的影响。使用在不同相对湿度水平(85%、50%和10%)下制备的标准气态混合物对三层床(二乙烯基苯/Carbopack X/Carboxen 1000)和单层床(Tenax GR)针捕集阱进行测试。标准混合物包含代表呼吸和环境空气成分的25种分析物,包括碳氢化合物、酮类、醛类、芳烃和硫化物,浓度范围为0.1 - 700 ppbv。两种针捕集阱表现出不同的行为,单层床的回收率与湿度无关,而当三层床在低湿度(例如10%相对湿度下捕集极易挥发的化合物时,观察到低回收率(10 - 20%)。在50%和85%相对湿度下,三层床对所有分析物的回收率几乎达到定量(>90%)。这种巨大差异可能是由于解吸步骤中水蒸气压力的作用减弱。在气体采样前向吸附剂材料中添加D - 丙酮和D - 甲苯,并对原始数据进行归一化处理,消除了这种影响,从而将不同湿度水平下分析物回收率的变化降低到20%以内。内标还用于将室温下针捕集阱储存期间极易挥发化合物的峰面积变化限制在10 - 20%以内。这种变化可能是由于吸附剂材料保留的水蒸气损失和/或在三层床针壁上冷凝所致。归一化后,单层床的日间和日内精密度分别减半至5%和10%,三层床则分别为15%和20%。向吸附剂中添加内标有助于控制整个分析过程,并提高针捕集阱微萃取用于超痕量挥发性有机化合物分析的可靠性。