| Literature DB >> 29391666 |
Abstract
We developed an approach for determining distances between carbon nanoparticles and grafted paramagnetic ions and molecules by means of nuclear spin-lattice relaxation data. The approach was applied to copper-, cobalt- and gadolinium-grafted nanodiamonds, iron-grafted graphenes, manganese-grafted graphene oxide and activated carbon fibers that adsorb paramagnetic oxygen molecules. Our findings show that the aforementioned distances vary in the range of 2.7-5.4 Å and that the fixation of paramagnetic ions to nanoparticles is most likely implemented by means of the surface functional groups. The nuclear magnetic resonance data data are compared with the results of electron paramagnetic resonance measurements and density functional theory calculations.Entities:
Year: 2017 PMID: 29391666 PMCID: PMC5775391 DOI: 10.1007/s00723-017-0952-3
Source DB: PubMed Journal: Appl Magn Reson ISSN: 0937-9347 Impact factor: 0.831
Average size of the studied nanocarbon particles and densities of carbon-inherited paramagnetic defects N ci and of paramagnetic ions and oxygen molecules
| Compound | Average diameter, nm | Average height, nm |
|
|
|---|---|---|---|---|
| Cu-DND | 5 | – | 6.3 × 1019 | 1.67 × 1019 |
| Co-DND | 5 | – | 6.3 × 1019 | 1.67 × 1019 |
| Gd-DND | 5 | – | 6.3 × 1019 | 7.85 × 1019 |
| Mn-GO | 560 | 1.1 | 1 × 1018 | 5.5 × 1018 |
| Fe-NGr | 13.1 | 0.83 | 3.7 × 1018 | 7.81 × 1019 |
| Fe-LGr | 1300 | 1.8 | 1.1 × 1018 | 1.18 × 1019 |
| ACF | 3 | 1.2 | 3 × 1019 | 6 × 1019 |
Fig. 1Sketches of the paramagnetic ion grafting to the spherical (a) and flat (disk-like) nanoparticles (b, c)
Fig. 2Characteristic 13C NMR spectra of initial DND and those grafted by different paramagnetic ions
Fig. 3Magnetization recovery (T 1 measurements) for initial DND and Gd-DND samples corresponding to T 1 = 262 and 89 ms, respectively. Dashed lines are simulations using Eq. (1). Inset shows stretched exponential 13C magnetization recovery of the diamond core carbons on a semi-logarithmic scale
Electron correlation times τ e and number of grafted paramagnetic ions and oxygen molecules per particle N S, relaxation rates caused by the interaction of 13C nuclear spins with grafted paramagnetic ions and molecules and distance L between paramagnetic ions and molecules and nanoparticle surface
| Compound | PM agent |
|
|
|
| Grafting mode |
|---|---|---|---|---|---|---|
| Cu-DND | Cu2+ | 10−8–10−10 | 4 | 1.06 | 3.2 ± 0.4 | |
| Co-DND | Co2+ | 10−9–10−10 | 4 | 0.801 | 3.6 ± 0.4 | |
| Gd-DND | Gd3+ | 1 × 10−11–3 × 10−11 | 18 | 7.34392 | 3.1 ± 0.3 | |
| Fe-NGr | Fe2+/Fe3+ | 10−11–10−13 | 16 | 0.184 | 3.5 ± 1.1 | Edge |
| Fe-LGr | Fe2+/Fe3+ | 10−11–10−13 | 47,000 | 0.04 | 3.7 ± 1.2 | Edge |
| Fe-NGr | Fe2+/Fe3+ | 10−11–10−13 | 16 | 0.184 | 3.2 ± 1.3 | Plane |
| Fe-LGr | Fe2+/Fe3+ | 10−11–10−13 | 47,000 | 0.04 | 2.7 ± 1.1 | Plane |
| Graphene oxide | Mn2+ | 5 × 10−11–2 × 10−12 | 2675 | 0.018 | 5.4 ± 1.1 | Edge |
| Graphene oxide | Mn2+ | 5 × 10−11–2 × 10−12 | 2675 | 0.018 | 5.2 ± 1.5 | Plane |
| ACF | O2 | 10−11–10−13 | 0.9 | 0.141 | 3.5 ± 1.0 | Edge |
| ACF | O2 | 10−11–10−13 | 0.9 | 0.141 | 2.9 ± 1.0 | Plane |
Fig. 4Sketch of (a) Cu2+ ion fixation to the nanodiamond surface and (b) Fe2+ ion fixation to the graphene edge via a pair of neighboring deprotonated carboxyl groups. Black spheres in (b) are carbon atoms