| Literature DB >> 25976396 |
Marta Słomińska1, Mariusz Marć, Jolanta Szczygelska-Tao, Piotr Konieczka, Jacek Namieśnik.
Abstract
To meet high expectations concerning precision and accuracy of reference materials, preparation of matrix-free reference materials using thermal decomposition-gas chromatography-mass spectrometry (TD-GC-MS) was proposed in this study. In the paper, the results obtained in preparation of the new reference materials for benzene and toluene are presented, based on the thermal decomposition technique of compounds chemically bound to the surface of optical fibre segments. The results obtained at various stages of the research procedure (homogeneity, stability) confirmed the possibility of using prepared laboratory samples of materials as reference materials for benzene and toluene. For the prepared batch of materials, reference values 1.26 ± 0.91 (ng/fibre) for benzene and 11.3 ± 7.4 (ng/fibre) for toluene were determined.Entities:
Year: 2015 PMID: 25976396 PMCID: PMC4498238 DOI: 10.1007/s00216-015-8758-3
Source DB: PubMed Journal: Anal Bioanal Chem ISSN: 1618-2642 Impact factor: 4.142
Fig. 1Research procedure for the preparation of new matrix-free reference materials for benzene and toluene
Fig. 2Diagram of the surface glass fibre chemical modification process in order to form a surface compound acting as a source of benzene in the thermal decomposition process
Analytical procedure for the thermal decomposition of the surface compound chemically bound to the surface of glass fibres and quantitative determination of benzene and toluene using the TD-GC-MS system
| Preparation of the glass fibre sample for the analysis | |
| • Placing a small amount of silanized glass wool (Alltech Associates Inc.) inside cylindrical inserts made of Teflon (Agilent Technologies) | |
| The thermal decomposition of the surface compound which produces the desired analytes (benzene or toluene), a two-step thermal desorption technique | |
| Thermal desorber: Unity v.2, Markes International Ltd., Pontyclun, UK | The first stage of thermal desorption |
| The second stage of thermal desorption | |
| Separation, identification and quantitative determination of analytes produced from thermal decomposition of the surface compound | |
| Gas chromatograph | Agilent Technologies 6890 |
| Detector | Mass spectrometer (MS) (5873 Network Mass Selective Detector, Agilent Technologies) |
| The operating mode of the detector | Selected ion monitoring (SIM) |
| The transmission line temperature | The transmission line temperature of GC-MS is 150 °C |
| Capillary column | DB-5 ms (J&W), 30 m × 0.25 mm × 25 μm |
| Carrier gas | Helium (1.5 ml/min) |
| Temperature programme | 50 °C for 5 min |
Fig. 3Determination of homogeneity and stability of matrix-free reference materials for benzene and toluene
Statistical parameters of ANOVA analysis obtained at the stage of homogeneity study performed for candidates of reference materials of benzene and toluene
| Benzene | Toluene | |||
|---|---|---|---|---|
| Within-bottle homogeneity | Between-bottle homogeneity | Within-bottle homogeneity | Between-bottle homogeneity | |
| Number of packages ( | 7 | 7 | 6 | 6 |
| Number of samples ( | 5 | 5 | 5 | 5 |
| Sum of squares (SS) | 2.8247 | 0.8794 | 156.95 | 36.96 |
| Number of degrees of freedom ( | 28 ( | 6 ( | 24 | 5 ( |
| Variance of analysis ( | 0.1009 | 0.1466 | 6.54 | 7.40 |
| Standard deviation ( | 0.32 | 0.38 | 2.56 | 2.72 |
| Coefficient of variation (CV, %) | 24 | 27 | 22.6 | 24 |
| Participation in the uncertainty due to heterogeneity of the material (%) | 43.3 | 56.7 | 46.9 | 53.1 |
|
| 1.31 < 2.44 | 1.13 < 2.62 | ||
Statistical evaluation of R parameter at the stage of stability study
| Period of time (months) |
|
| |
|---|---|---|---|
| Toluene | 6 | 0.84 | 0.19 |
| 12 | 0.97 | 0.17 | |
| Benzene | 6 | 1.11 | 0.18 |
| 12 | 0.99 | 0.12 |
Contributions of uncertainty obtained during homogeneity and stability study
| Source of uncertainty | Benzene (ng/fibre) | Toluene (ng/fibre) |
|---|---|---|
| Uncertainty of homogeneity ( | 0.45 | 3.7 |
| Uncertainty of stability ( | 0.032 | 0.58 |
Fig. 4Source of uncertainty resulting from the applied analytical procedure