| Literature DB >> 35527864 |
María de Las Nieves Piña1, María Susana Gutiérrez1, Mario Panagos1, Paulino Duel1, Alberto León1, Jeroni Morey1, David Quiñonero1, Antonio Frontera1.
Abstract
It has been recently evidenced that hybrid magnetic nanomaterials based on perylene diimide (PDI) dopamine and iron oxide nanoparticles are useful for the adsorption and determination of volatile organic compounds (VOCs). However, NDI compounds are expensive and difficult to handle compared to smaller size diimides. Therefore, in this manuscript a combined experimental and theoretical investigation is reported including the analysis of the effect of changing the aromatic surface on the ability of these magnetite supported organic-inorganic hybrid nanoparticles (NPs) to adsorb several aromatic and non-aromatic VOCs. In particular, two new hybrid Fe3O4NPs are synthesized and characterized where the size of organic PDI dopamine linker is progressively reduced to naphthalene diimide (NDI) and pyromellitic diimide (PMDI). These materials were utilized to fill two sorbent tubes in series. Thermal desorption (TD) combined with capillary gas chromatography (GC)/flame detector (FID) was used to analyze both front and back tubes. Adsorption values (defined as % VOCs found in the front tube) were determined for a series of VOCs. The binding energies (DFT-D3 calculations) of VOC-Fe3O4NP complexes were also computed to correlate the electron-accepting ability of the arylene diimide (PDI, NDI or PMDI) with the adsorption capacity of the different tubes. The prepared hybrids can be easily separated magnetically and showed great reusability. This journal is © The Royal Society of Chemistry.Entities:
Year: 2019 PMID: 35527864 PMCID: PMC9069820 DOI: 10.1039/c9ra04490f
Source DB: PubMed Journal: RSC Adv ISSN: 2046-2069 Impact factor: 4.036
Scheme 1PMDI (1), NDI (2) and PDI (3) derivatives used to functionalize the Fe3O4NP. VOCs 4 to 9 used in this study.
Fig. 1MEP surfaces of aromatic diimides 1–3 used in the study. Energies at selected points of the surface (0.001 a.u.) are given in kJ mol−1.
Fig. 2(a–c) Optimized geometries of 1 : 1 complexes between VOC 8 and the different π-acidic surfaces (PDI, NDI and PMDI) at the PB86-D3/def2-TZVPP level of theory.
Interaction energies (ΔE in kJ mol−1) of complexes between receptors 1–3 and VOCs 4–12 at the PB86-D3/def2-TZVPP level of theory. The adsorption is the percentage of VOC retained in the front tube. See Scheme 1 for the structure of VOCs
| VOC | Δ | ||
|---|---|---|---|
| 1 | 2 | 3 | |
| 4 | −40.1, 59 ± 5% | −45.1, 64 ± 5% | −45.1, 65 ± 5% |
| 5 | −47.6, 62 ± 5% | −49.3, 68 ± 5% | −57.3, 76 ± 5% |
| 6 | −49.7, 69 ± 5% | −57.7, 74 ± 5% | −57.7, 75 ± 5% |
| 7 | −51.8, 70 ± 5% | −59.8, 78% ± 5% | −59.4, 77% ± 5% |
| 8 | −52.3, 70 ± 5% | −59.8, 80 ± 5% | −63.1, 89 ± 5% |
| 9 | −22.9, — | −36.4, — | −30.9, — |
| 10 | −43.5, 67 ± 5% | −48.5, 69 ± 5% | −38.9, 63% ± 5% |
| 11 | −49.3, 70 ± 5% | −55.2, 75 ± 5% | −60.3, 82% ± 5% |
| 12 | −55.6, 75 ± 5% | −58.9, 81 ± 5% | −62.3, 86 ± 5% |
The presence of VOC was not detected in the front tube (see main text).
Fig. 3Optimized complexes of NDI 2 with methylacetate (a) and ethyl acetate (b), propylacetate (c) and butylacetate (d) at the PB86-D3/def2-TZVPP level of theory. The lone pair (lp)⋯π interactions are indicated as dashed lines. The interaction energies are also indicated.
Fig. 4Regression plot of % quantity of VOC adsorbed and the interaction energies for the aromatic VOCs interacting with receptors 1–3.
Scheme 2Schematic representation of the sorbent tubes and magnetite supported organic–inorganic hybrids studied in this work.
Fig. 5Schematic representation of the tubes connected in series. The quantitative analysis of back tube allows to quantify the amount of VOC adsorbed in the front tube.
Retention times (min), milligrams of injected VOC, milligrams of VOC in the back tube
| VOC | RT (min) | Injected VOC (mg) | VOC in back tube |
|---|---|---|---|
| 4@1 | 13.7 | 1.226 | 0.502 ± 0.025 |
| 4@2 | 13.7 | 1.226 | 0.441 ± 0.023 |
| 4@3 | 13.7 | 1.226 | 0.429 ± 0.020 |
| 5@1 | 17.5 | 1.214 | 0.461 ± 0.023 |
| 5@2 | 17.5 | 1.214 | 0.387 ± 0.020 |
| 5@3 | 17.5 | 1.214 | 0.290 ± 0.014 |
| 6@1 | 20.7 | 1.212 | 0.379 ± 0.019 |
| 6@2 | 20.7 | 1.212 | 0.315 ± 0.016 |
| 6@3 | 20.7 | 1.212 | 0.303 ± 0.015 |
| 7@1 | 23.7 | 1.207 | 0.362 ± 0.018 |
| 7@2 | 23.7 | 1.207 | 0.265 ± 0.013 |
| 7@3 | 23.7 | 1.207 | 0.277 ± 0.013 |
| 8@1 | 26.8 | 0.120 | 0.349 ± 0.017 |
| 8@2 | 26.8 | 0.120 | 0.241 ± 0.012 |
| 8@3 | 26.8 | 0.120 | 0.134 ± 0.007 |
| 9@1 | 9.7 | 0.130 | — |
| 9@2 | 9.7 | 0.130 | — |
| 9@3 | 9.7 | 0.130 | — |
| 10@1 | 12.2 | 0.126 | 0.416 ± 0.021 |
| 10@2 | 12.2 | 0.126 | 0.391 ± 0.019 |
| 10@3 | 12.2 | 0.126 | 0.467 ± 0.023 |
| 11@1 | 15.5 | 0.124 | 0.369 ± 0.018 |
| 11@2 | 15.5 | 0.124 | 0.311 ± 0.015 |
| 11@3 | 15.5 | 0.124 | 0.219 ± 0.011 |
| 12@1 | 18.7 | 0.123 | 0.309 ± 0.015 |
| 12@2 | 18.7 | 0.123 | 0.235 ± 0.012 |
| 12@3 | 18.7 | 0.123 | 0.173 ± 0.009 |
Data from three independent experiments.
Calibration plots are not reproducible likely due to the low adsorption of this particular VOC.