| Literature DB >> 32794005 |
Giovanni Pugliese1, Felix Piel2,3,4, Phillip Trefz1, Philipp Sulzer2, Jochen K Schubert1, Wolfram Miekisch5.
Abstract
Proton transfer reaction time-of-flight mass spectrometry (Entities:
Keywords: Breath analysis; Ion-funnel; PTR-ToF-MS; Real-time mass spectrometry; VOCs
Mesh:
Substances:
Year: 2020 PMID: 32794005 PMCID: PMC7497501 DOI: 10.1007/s00216-020-02846-8
Source DB: PubMed Journal: Anal Bioanal Chem ISSN: 1618-2642 Impact factor: 4.142
Fig. 1Schematic view of the PTR-ToF 1000 ultra setup: (a) hollow cathode ion source, (b) drift tube, (c) ion-funnel, (d) ToF mass analyzer
Fig. 2Ion intensities in counts per second (cps) of the water reagent ions (H3O+·(H2O), n = 0, 1, and 2) and parasitic ions O2+ and NO+ present in the DT under dry (a) and humid (b) conditions as a function of RF voltage. DC was 13.5 V/cm and Edrift was 66 V/cm
Fig. 3Ion intensities in counts per second (cps) of H3O+ and H3O+·(H2O) present in the DT under dry (a) and humid (b) conditions as a function of the DC field (V/cm). RF voltage was 120 Vp-p and Edrift was 66 V/cm
Fig. 4Effect of RF voltage (40–200 Vp-p) and DC field (4.5–27 V/cm) on VOC intensities. The whole experiment was conducted at Edrift of 48 V/cm and 66 V/cm, with dry and humid samples (humidity of 47 g m−3). Data were normalized to maximum values to emphasize relative changes
Fig. 5Intensities of acetaldehyde (blue triangle), acetone (grey square), benzene (yellow cross), and dichlorobenzene (red round) as function of RF voltage. DC field was 13.5 V/cm and Edrift was 66 V/cm. Data were normalized onto respective maximum values to emphasize the relative changes
Fig. 6Intensities of acetaldehyde (blue triangle), acetone (grey square), benzene (yellow cross), and dichlorobenzene (red round) as function of DC voltage. RF voltage was 120 Vp-p and Edrift was 66 V/cm. Data were normalized onto respective maximum values to emphasize the relative changes
Comparison of sensitivities and LODs for DC-mode and RF-mode of all investigated VOCs. LODs were calculated for 1 s of integration time. The DC-mode data were collected at Edrift = 66 V/cm, RF = 0 Vp-p, and DC = 66 V/cm under humid conditions. The RF-mode data were collected at Edrift = 66 V/cm, RF = 120 Vp-p, and DC = 13.5 V/cm under humid conditions
| Sensitivity (cps ppbV−1) | LOD (ppbV) | |||||
|---|---|---|---|---|---|---|
| Compound ( | DC-mode | RF-mode | RF-mode/DC-mode | DC-mode | RF-mode | RF-mode/DC-mode |
| Methanol (33) | 27.5 | 116.5 | 4.2 | 0.735 | 0.432 | 1.7 |
| Acetonitrile (42) | 46.7 | 418.2 | 8.6 | 0.337 | 0.11 | 3.1 |
| Acetaldehyde (45) | 56.5 | 458.1 | 8.1 | 0.66 | 0.245 | 2.7 |
| Ethanol (47) | 3.4 | 18.2 | 5.3 | 12.319 | 8.31 | 1.5 |
| 2-Propenal (57) | 43 | 406.3 | 9.4 | 0.301 | 0.146 | 2.1 |
| Acetone (59) | 103.6 | 1008.3 | 9.7 | 0.26 | 0.09 | 2.9 |
| Isoprene (69) | 10 | 120.8 | 12.1 | 1.226 | 0.463 | 2.6 |
| 2-Butenal (71) | 65.8 | 701 | 10.7 | 0.163 | 0.069 | 2.4 |
| 2-Butanone (73) | 66.1 | 750.9 | 11.4 | 0.325 | 0.104 | 3.1 |
| Benzene (79) | 39.2 | 423.6 | 10.8 | 0.22 | 0.056 | 3.9 |
| Toluene (93) | 50.2 | 620.3 | 12.4 | 0.144 | 0.06 | 2.4 |
| 65.4 | 747.4 | 11.4 | 0.115 | 0.03 | 3.8 | |
| Chlorobenzene (113) | 38.2 | 413.7 | 10.8 | 0.155 | 0.061 | 2.5 |
| 25.7 | 252.1 | 9.8 | 0.265 | 0.087 | 3 | |
| 1,2-Dichlorobenzene (147) | 43.9 | 264.7 | 6.0 | 0.087 | 0.044 | 2 |
List of VOCs that could be detected from exhaled breath in real-time. Compounds that could only be detected in RF-mode compared with DC-mode are labelled using bold italic text. The DC-mode data were collected at Edrift = 66 V/cm, RF = 0 Vp-p, and DC = 66 V/cm. The RF-mode data were collected at Edrift = 66 V/cm, RF = 120 Vp-p, and DC = 13.5 V/cm
| Peak number | Measured mass ( | Exact mass ( | Mass accuracy (ppm) | Empirical formula | Concentration range (ppbV) | LOD DC-mode (ppbV) | LOD RF-mode (ppbV) | LOQ DC-mode (ppbV) | LOQ RF-mode (ppbV) | Potential compound |
|---|---|---|---|---|---|---|---|---|---|---|
| 1 | 33.031 | 33.033 | − 60.55 | CH4O+ | 37.401–364.033 | 0.735 | 0.432 | 2.426 | 1.426 | Methanol |
| 2 | 42.031 | 42.034 | − 71.37 | C2H4N+ | 2.443–76.18 | 0.337 | 0.11 | 1.112 | 0.363 | Acetonitrile |
| 3 | 47.046 | 47.049 | − 63.76 | C2H6O+ | 12.332–74.094 | 12.319 | 8.31 | 40.653 | 27.423 | Ethanol |
| 4 | 59.053 | 59.049 | 67.74 | C3H7O+ | 133.39–1043.864 | 0.26 | 0.09 | 0.858 | 0.297 | Acetone |
| 5 | 61.031 | 61.028 | 49.16 | C2H5O2+ | 4.328–40.298 | 0.865 | 0.763 | 2.855 | 2.518 | Acetic acid |
| 6 | 63.028 | 63.026 | 31.73 | C2H7S+ | 1.435–10.894 | 0.203 | 0.12 | 0.67 | 0.396 | Dimethylsulfide |
| 7 | 69.072 | 69.070 | 28.96 | C5H9+ | 31.166–193.766 | 1.226 | 0.463 | 4.046 | 1.528 | Isoprene |
| 8 | 71.052 | 71.049 | 42.22 | C4H7O+ | 0.25–6.957 | 0.163 | 0.069 | 0.538 | 0.228 | 2-Butenal |
| 9 | 73.069 | 73.065 | 54.75 | C4H9O+ | 1.26–3.769 | 0.325 | 0.104 | 1.073 | 0.343 | Butanone |
| 10 | 79.052 | 79.054 | − 25.30 | C6H7+ | 0.309–8.362 | 0.22 | 0.056 | 0.726 | 0.185 | Benzene |
| 11 | 87.073 | 87.080 | − 80.39 | C5H11O+ | 0.62–1.643 | 0.349 | 0.272 | 1.152 | 0.898 | Pentanal |
| 12 | 89.052 | 89.060 | − 89.83 | C4H9O2+ | 0.469–5.146 | 0.203 | 0.126 | 0.67 | 0.416 | Ethylacetate |
| 13 | 93.073 | 93.070 | 32.23 | C7H9+ | 0.413–7.61 | 0.144 | 0.06 | 0.475 | 0.198 | Toluene |
| 14 | 137.129 | 137.132 | − 21.88 | C10H17+ | 0.911–12.413 | 0.265 | 0.087 | 0.875 | 0.287 | Limonene |