| Literature DB >> 31588292 |
Matteo Briganti1,2, Guglielmo Fernandez Garcia1,3, Julie Jung3, Roberta Sessoli1, Boris Le Guennic3, Federico Totti1.
Abstract
Lanthanide ions when complexed by polyamino-polycarboxylate chelators form a class of compounds of paramount importance in several research and technological areas, particularly in the fields of magnetic resonance and molecular magnetism. Indeed, the gadolinium derivative is one of the most employed contrast agents for magnetic resonance imaging while the dysprosium one belongs to a new generation of contrast agents for T2-weighted MRI. In molecular magnetism, Single Molecule Magnets (SMMs) containing lanthanide ions have become readily popular in the chemistry and physics communities since record energy barriers to the reversal of magnetization were reported. The success of lanthanide complexes lies in their large anisotropy due to the contribution of the unquenched orbital angular momentum. However, only a few efforts have been made so far to understand how the f-orbitals can be influenced by the surrounding ligands. The outcomes have been rationalized using mere electrostatic perturbation models. In the archetype compound [Na{Dy(DOTA) (H2O)}]·4H2O (Na{DyDOTA}·4H2O) an unexpected easy axis of magnetization perpendicular to the pseudo-tetragonal axis of the molecule was found. Interestingly, a dependency of the orientation of the principal magnetization axis on the simple rotation of the coordinating apical water molecule (AWM) - highly relevant for MRI contrast - around the Dy-OAWM bond was predicted by ab initio calculations, too. However, such a behaviour has been contested in a subsequent paper justifying their conclusions on pure electrostatic assumptions. In this paper, we want to shed some light on the nature of the subtle effects induced by the water molecule on the magnetic properties of the DyDOTA archetype complex. Therefore, we have critically reviewed the structural models already published in the literature along with new ones, showing how the easy axis orientation can dangerously depend on the chosen model. The different computed behaviors of the orientation of the easy axis of magnetization have been rationalized as a function of the energy gap between the ground and the first excited doublet. Magneto-structural correlations together with a mapping of the electrostatic potential generated by the ligands around the Dy(iii) ion through a multipolar expansion have also been used to evidence and quantify the covalent contribution of the AWM orbitals. This journal is © The Royal Society of Chemistry 2019.Entities:
Year: 2019 PMID: 31588292 PMCID: PMC6685353 DOI: 10.1039/c9sc01743g
Source DB: PubMed Journal: Chem Sci ISSN: 2041-6520 Impact factor: 9.825
Fig. 1Main geometrical parameters employed for magneto-structural correlations. α is the angle of rotation around the Dy-OAWM bond; γ0,1 represents the angles between the calculated and experimental easy-axis of magnetization for the ground and first excited Kramers' doublets; and φ is the angle between the Dy-OAWM bond and the plane of the water molecule. The dysprosium atom is coloured in light green, oxygen atoms in red, nitrogen atoms in cyan, carbon atoms in grey and hydrogen AWM atoms in white. Hydrogen atoms of DOTA were not reported for the sake of clarity.
Summary of the different structural models considered in this paper (M1–5) and the already published ones by Cucinotta et al.2 and Chilton's et al.47 For the colour code, refer to Fig. 2
| Models | [DyDOTAH2O]– ( | 3 Na+ ions surrounding the DyDOTA complex ( | Coord. sphere of 3 Na+ ions ( | 4 Dy ions of neighbouring molecules ( | All atoms of 2 neighbouring crystal cells ( |
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| Explicitly QM handled | DDA point charges | DDA point charges | DDA point charges | DDA point charges |
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| Explicitly QM handled | — | — | — | — |
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| Explicitly QM handled | Explicitly QM handled | — | — | — |
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| Explicitly QM handled | Explicitly QM handled | 3(2HCOO– + H2O) | — | — |
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| Explicitly QM handled | Explicitly QM handled | 3(2HCOO– + H2O) | DDA point charges | — |
| Cucinotta | Explicitly QM handled | Explicitly QM handled | 3(2HCOO– + H2O) | Explicitly QM mimicked by Na+ ions | — |
| Cucinotta | Explicitly QM handled | — | — | — | — |
| Chilton | Explicitly QM handled | Explicitly QM handled | — | — | — |
Fig. 2Scheme of the different models employed. The different colors indicate different parts of the system modeled according to Table 1.
Orientation of ground Kramers' doublets' main magnetic axis in the molecular frame for the different structural models considered in this paper (M1–5) and for the already published ones
| Model | Cucinotta | Cucinotta | Chilton |
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| 9.6° | 0.6° | ∼0° | 2.8° | 8° | 5.5° | 88° | 4.6° |
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| 85.8° | 41.0° | ∼0° | 34.1° | 81.1° | 3.5° | 84° | 11.9° |
| No H2O |
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| 7.6° | 3.0° | 77.5° | |||||
Exact Model A in Cucinotta et al.2 (φ = 0°).
Modified Model A in Cucinotta et al.2 (φ = 53.6°).
Extracted values from Fig. 3 of Chilton et al.47 (exact values were not reported).
Fig. 3Model M1. Computed ground state easy axis for different α angles inside the molecular frame.
Fig. 4Model M1. Variation of the angle γ0,1 as a function of the rotation of the AWM (α), for ground and first excited states.
Fig. 5Energetic variations involving the ground and first excited Kramers' doublet as a function of the AWM's angle of rotation α for M1.
Fig. 6Electrostatic potential computed by CAMMEL for M1 and M2m at different α angles. For each α angle, the top and side views of the complex are shown. Only the atoms directly bonded to the Dy(iii) ion are showed. Oxygen and nitrogen atoms are red and blue, respectively. The orientation (blue line) of the easy axis of magnetization for each geometry is also shown.
Results of the calculations on model M1, as a function of the Dy-OAWM stretching (in Angstrom) for α = 120°. Results obtained by substituting the AWM with its multipole expansion were also reported
| Exp | 0 Å | 0.05 Å | 0.1 Å | 0.15 Å | 0.2 Å | No H2O | ||||||
| Orb | Charges | Orb | Charges | Orb | Charges | Orb | Charges | Orb | Charges | |||
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| 3.4 | 0.9 | 0.5 | 0.9 | 0.6 | 1.0 | 0.7 | 1.0 | 0.7 | 1.0 | 0.7 | 0.6 |
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| 4.9 | 4.1 | 1.8 | 5.0 | 3.5 | 5.8 | 3.9 | 6.5 | 4.0 | 6.9 | 3.8 | 2.9 |
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| 17.0 | 16.0 | 14.6 | 15.1 | 14.6 | 14.3 | 15.0 | 13.7 | 15.4 | 13.3 | 15.8 | 17.3 |
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| 71.7° | 46.3° | 67.7° | 29.1° | 62.0° | 19.2° | 54.2° | 14.2° | 44.7° | 11.2° | 3.0° | ||
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| E0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 |
| E1 | 52 | 20 | 6 | 18 | 7 | 17 | 8 | 16 | 10 | 16 | 11 | 27 |
| E2 | 112 | 122 | 97 | 122 | 101 | 123 | 106 | 123 | 109 | 124 | 112 | 146 |
| E3 | 198 | 194 | 144 | 193 | 152 | 193 | 159 | 193 | 166 | 194 | 171 | 231 |
| E4 | 287 | 281 | 229 | 283 | 239 | 285 | 249 | 288 | 257 | 291 | 265 | 356 |
| E5 | 400 | 351 | 298 | 359 | 316 | 367 | 332 | 376 | 346 | 384 | 359 | 506 |
| E6 | 454 | 430 | 378 | 448 | 405 | 465 | 431 | 482 | 453 | 499 | 473 | 702 |
| E7 | 574 | 566 | 470 | 595 | 515 | 622 | 557 | 648 | 593 | 673 | 625 | 982 |