Measurement of Distribution Constants Between Air and Solid Substrates Using Gas Chromatography for Quantification of Hydrocarbons in Solid Substrates via Headspace-Solid Phase Microextraction

IF 1.2 4区 化学 Q4 BIOCHEMICAL RESEARCH METHODS Chromatographia Pub Date : 2024-04-06 DOI:10.1007/s10337-024-04328-w
Joonyeong Kim, Jihnhee Yu
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Abstract

This study focused on the chromatographic measurements of the distribution constants of hydrocarbons at the air–solid interface for indirect quantification of the hydrocarbon compositions in solid substrates via headspace-solid phase microextraction (HS-SPME). Packed column gas chromatography and other experimental data were used to measure the distribution constants of six hydrocarbons (n-heptane, n-octane, n-nonane, toluene, p-xylene, and 1,2,4-trimethylbenzene) between the headspace (HS) and two solid substrates (cardboard and cotton fabric) at 60 and 90 °C. To validate the accuracies of the measured distribution constants in this work, model HS samples were prepared in vials containing known amounts of solid substrates and a mixture of vaporized hydrocarbons at 60 and 90 °C. These HS samples were analyzed with gas chromatography using both direct vapor analysis and HS-SPME. The experimental hydrocarbon compositions of HS samples were compared with the calculated HS compositions from the measured distribution constants and other experimental parameters. The Wilcoxon signed-rank test results indicated that the calculated hydrocarbon compositions of the model samples were comparable with the experimental hydrocarbon compositions. This work suggests that gas chromatographic measurements using packed columns can provide a reliable and convenient method for measuring the distribution constants of hydrocarbons between air and various solid substrates.

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利用气相色谱法测量空气与固体基质之间的分配常数,通过顶空-固相微萃取对固体基质中的碳氢化合物进行定量
摘要 本研究的重点是通过顶空-固相微萃取(HS-SPME)技术测量碳氢化合物在空气-固体界面的色谱分布常数,以间接定量固体基质中的碳氢化合物成分。利用填料柱气相色谱和其他实验数据,在 60 和 90 °C 温度下测量了六种碳氢化合物(正庚烷、正辛烷、正壬烷、甲苯、对二甲苯和 1,2,4-三甲苯)在顶空(HS)和两种固体基质(纸板和棉织物)之间的分布常数。为了验证所测分布常数的准确性,我们在装有已知量的固体基质和气化碳氢化合物混合物的小瓶中制备了模型 HS 样品,温度分别为 60 和 90 °C。采用直接蒸气分析法和 HS-SPME 法对这些 HS 样品进行气相色谱分析。实验得出的 HS 样品碳氢化合物成分与根据测量的分布常数和其他实验参数计算得出的 HS 成分进行了比较。Wilcoxon 符号秩检验结果表明,模型样品的计算碳氢化合物成分与实验碳氢化合物成分相当。这项工作表明,使用填料柱进行气相色谱测量可为测量碳氢化合物在空气和各种固体基质之间的分布常数提供一种可靠而方便的方法。
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来源期刊
Chromatographia
Chromatographia 化学-分析化学
CiteScore
3.40
自引率
5.90%
发文量
103
审稿时长
2.2 months
期刊介绍: Separation sciences, in all their various forms such as chromatography, field-flow fractionation, and electrophoresis, provide some of the most powerful techniques in analytical chemistry and are applied within a number of important application areas, including archaeology, biotechnology, clinical, environmental, food, medical, petroleum, pharmaceutical, polymer and biopolymer research. Beyond serving analytical purposes, separation techniques are also used for preparative and process-scale applications. The scope and power of separation sciences is significantly extended by combination with spectroscopic detection methods (e.g., laser-based approaches, nuclear-magnetic resonance, Raman, chemiluminescence) and particularly, mass spectrometry, to create hyphenated techniques. In addition to exciting new developments in chromatography, such as ultra high-pressure systems, multidimensional separations, and high-temperature approaches, there have also been great advances in hybrid methods combining chromatography and electro-based separations, especially on the micro- and nanoscale. Integrated biological procedures (e.g., enzymatic, immunological, receptor-based assays) can also be part of the overall analytical process.
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