| Literature DB >> 29641507 |
Saied M Soliman1,2, Assem Barakat3,4, Mohammad Shahidul Islam5, Hazem A Ghabbour6,7.
Abstract
The synthesis and structural aspects of a new dinuclear silver (I) complex with malonamide type ligand (L) is reported. Each Ag ion in the [Ag₂L₂(NO₃)₂]·H₂O complex is coordinated to two ligands, L, each acting as a bridged ligand via its two pyridine arms; Ag(I) acts as a connector between them. Two types of Ag-ligands close contacts were detected: Ag-N1, Ag-N4 from the two L units, and Ag-O5, Ag-O6 from the two nitrate anions, wherein both the nitrate ions are inside the cage formed by the [Ag₂L₂] unit. The coordination geometry around each Ag(I) is a distorted tetrahedron. The [Ag₂L₂(NO₃)₂] complex units are connected by weak intermolecular C-H…O interactions. The different intermolecular interactions were quantified using Hirshfeld surface analysis. Using two DFT methods (B3LYP and WB97XD), the nature and strength of the Ag-N and Ag-O interactions were described using atoms in molecules (AIM) and natural bond orbital (NBO) analyses. Topological parameters indicated that the strength of the two Ag-N bonds was similar, while that of the two Ag-O interactions were significantly different. Moreover, the Ag-N interactions have a predominant covalent character, while the Ag-O interactions are mainly ionic. The NBO analysis indicated that the most important anti-bonding Ag-orbital in these interactions has an s-orbital character.Entities:
Keywords: AIM; NBO; continuous shape measure; malonamide; silver (I) complex
Mesh:
Substances:
Year: 2018 PMID: 29641507 PMCID: PMC6017368 DOI: 10.3390/molecules23040888
Source DB: PubMed Journal: Molecules ISSN: 1420-3049 Impact factor: 4.411
Scheme 1Schematic representation of the ligand (L) and its [AgL(NO complex.
The crystal and experimental data of [AgL(NO complex.
| Parameters | [AgL(NO3)]2.H2O] |
|---|---|
| F.wt. | C56H48Ag2Cl2N10O13 |
| M.wt. | 1355.68 |
| T | 293(2) K |
| λ (Mo | 0.71073 Å |
| Crystal system | Tetragonal |
| Space group | I41/a |
| Unit cell dimensions | |
| Volume | 11318.9 (12) Å3 |
| R-Factor | 0.153 |
| Z | 8 |
| Density (calculated) | 1.589 mg m−3 |
| Absorption coefficient | 0.86 mm−1 |
| 5472 | |
| Crystal size | 0.29 × 0.20 × 0.16 mm |
| Theta range for data collection | 2.3–21.5° |
| Completeness to θ = 21.5° | 99.9 |
| Goodness-of-fit on | 1.06 |
| Diffractometer | Bruker APEX-II D8 Venture diffractometer |
| Absorption correction | Multi-scan, SADABS |
| Limiting indices | −27 ≤ h ≤ 27, −27 ≤ k ≤ 27, −32 ≤ l ≤ 32 |
| Reflections collected/unique | 77356/3477 [R(int) = 0.153] |
| Refinement method | Full-matrix least-squares on F2 |
| Data/restraints/parameters | 6500/0/2375 |
| Final R indices [I > 2σ(I)] | R1 = 0.070, wR2 = 0.151 |
| R indices (all data) | R1 = 0.152, wR2 = 0.190 |
| Largest diff. peak and hole (e A−3) | 0.83 and −0.73 |
| CCDC number | 1543617 |
Selected geometric parameters (Å, °) of [AgL(NO·H complex.
| Ag1—O6 | 2.541 (5) | O6—N5 | 1.247 (6) |
| Ag1—N4 | 2.224 (4) | N1—C1 | 1.348 (9) |
| Ag1—N1i | 2.221 (5) | N1—C5 | 1.342 (8) |
| Cl1—C18 | 1.755 (7) | N2—C5 | 1.404 (7) |
| O1—C6 | 1.209 (7) | N2—C6 | 1.363 (8) |
| O2—C8 | 1.219 (8) | N3—C8 | 1.337 (7) |
| O3—C22 | 1.203 (9) | N3—C9 | 1.390 (6) |
| O4—N5 | 1.218 (7) | N4—C9 | 1.340 (7) |
| O5—N5 | 1.236 (7) | N4—C13 | 1.333 (8) |
| O6—Ag1—N4 | 101.67 (16) | N1—C5—N2 | 115.3 (5) |
| O6—Ag1—N1i | 102.63 (16) | N1—C5—C4 | 121.9 (6) |
| N1i—Ag1—N4 | 152.93 (18) | O1—C6—C7 | 122.0 (5) |
| Ag1—O6—N5 | 115.2 (3) | N2—C6—C7 | 114.6 (5) |
| C1—N1—C5 | 117.3 (5) | O1—C6—N2 | 123.3 (5) |
| Ag1i—N1—C1 | 111.7 (4) | O2—C8—C7 | 120.5 (5) |
| Ag1i—N1—C5 | 130.9 (4) | N3—C8—C7 | 115.8 (5) |
| C5—N2—C6 | 127.5 (5) | O2—C8—N3 | 123.7 (5) |
| C8—N3—C9 | 128.1 (5) | N3—C9—N4 | 115.2 (5) |
| Ag1—N4—C9 | 127.3 (3) | N4—C9—C10 | 120.9 (5) |
| Ag1—N4—C13 | 114.3 (4) | N3—C9—C10 | 123.9 (5) |
| C9—N4—C13 | 118.2 (5) | N4—C13—C12 | 123.9 (7) |
| O4—N5—O5 | 122.1 (5) | Cl1—C18—C17 | 120.1 (5) |
| O4—N5—O6 | 118.4 (5) | Cl1—C18—C19 | 118.8 (6) |
| O5—N5—O6 | 119.4 (5) | O3—C22—C23 | 121.2 (6) |
| N1—C1—C2 | 123.7 (6) | O3—C22—C21 | 120.8 (6) |
| N2—C5—C4 | 122.7 (6) |
Figure 1The atom numbering scheme of the asymmetric unit (A) and the coordination environment around the Ag(I) ion of [AgL(NO complex (B).
Figure 2Packing of the complex units along the crystallographic b-direction showing the nitrate ions within the channels made by the [AgL] complex units.
Figure 3View of the molecular packing of the [AgL(NO complex units showing: (A) the intramolecular C—H…O and N—H…O and (B) intermolecular C4—H4A…O1 and the C4—H4A…O6ii H-bonding interactions.
Selected hydrogen-bonding parameters of [AgL(NO complex.
| D—H···A | D—H (Å) | H…A (Å) | D…A (Å) | D—H…A (°) |
|---|---|---|---|---|
| N2—H2B…O5 | 0.8600 | 2.2300 | 3.044 (7) | 158.00 |
| N3—H3B…O6 | 0.8600 | 2.0800 | 2.923 (6) | 167.00 |
| C2—H2A…O4i | 0.9300 | 2.4900 | 3.358 (11) | 155.00 |
| C4—H4A…O1 | 0.9300 | 2.2000 | 2.806 (8) | 123.00 |
| C4—H4A…O6ii | 0.9300 | 2.3600 | 3.160 (8) | 144.00 |
| C7—H7A…O6 | 0.9800 | 2.4800 | 3.349 (7) | 148.00 |
Symmetry code(s): (i) y + 5/4, −x + 1/4, z + 1/4; (ii) −y − 1/4, x − 3/4, z + 1/4.
Figure 4The dnorm Hirshfeld surface of [AgL(NO complex.
Figure 5Percentage of possible contacts in the [AgL(NO complex.
Figure 6The significant O…H interactions (dark red regions) in the decomposed dnorm map.
The full assignment of the 1H-NMR spectra of the free and coordinated ligand. Atom numbering refers to the X-ray structure.
| Atom | L | [AgL(NO3)]2·H2O | Atom | L | [AgL(NO3)]2·H2O |
|---|---|---|---|---|---|
| H1A | 8.34 | 8.33 | H19A | 7.57 | 7.56 |
| H2A | 7.14 | 7.15 | H20A | 7.44 | 7.43 |
| H3A | 7.86 | 7.83 | H21A | 3.24 | 3.26 |
| H4A | 8.24 | 8.24 | H21B | 3.66–3.70 | 3.71–3.78 |
| H7A | 4.15–4.28 | 4.18 | H24A | 8.08 | 8.04 |
| H10A | 8.24 | 8.24 | H25A | 7.68 | 7.68 |
| H11A | 7.86 | 7.83 | H26A | 7.80 | 7.75 |
| H12A | 7.14 | 7.15 | H27A | 7.68 | 7.68 |
| H13A | 8.34 | 8.33 | H28A | 8.08 | 8.04 |
| H16A | 7.44 | 7.43 | HN2 | 10.56 | 10.48 |
| H17A | 7.57 | 7.56 | HN3 | 10.65 | 10.62 |
Topology parameters of the Ag–N and Ag–O interactions of [AgL(NO complex using two different DFT methods.
| Bond | Distance Å | ρ(r) a.u. | G(r) a.u. | V(r) a.u. | H(r) a.u. | |V(r)|/G(r) a | Eint Kcal/mol |
|---|---|---|---|---|---|---|---|
| Ag—O6 | 2.541 | 0.0222 | 0.0210 | −0.0199 | 0.0010 | 0.9514 | 6.2554 |
| Ag—O5 | 2.720 | 0.0318 | 0.0346 | −0.0337 | 0.0009 | 0.9748 | 10.5845 |
| Ag—N1i | 2.221 | 0.0708 | 0.0858 | −0.0980 | −0.0122 | 1.1419 | 30.7522 |
| Ag—N4 | 2.224 | 0.0703 | 0.0854 | −0.0974 | −0.0119 | 1.1399 | 30.5452 |
| Ag—O6 | 2.539 | 0.0220 | 0.0211 | −0.0201 | 0.0010 | 0.9529 | 6.2978 |
| Ag—O5 | 2.720 | 0.0315 | 0.0348 | −0.0339 | 0.0009 | 0.9746 | 10.6384 |
| Ag—N1i | 2.221 | 0.0706 | 0.0869 | −0.0989 | −0.0120 | 1.1385 | 31.0405 |
| Ag—N4 | 2.222 | 0.0701 | 0.0864 | −0.0982 | −0.0118 | 1.1365 | 30.8184 |
a |V(r)|/G(r): ratio of electron potential to kinetic energy density.
The most significant donor (NBOi)-acceptor (NBOj) charge transfer interaction energies (kcal/mol) of the Ag–N and Ag–O interactions.
| NBOi | NBOj | B3LYP | WB97XD |
|---|---|---|---|
| LP(1)N1i | LP * (6)Ag | 33.56 | 39.38 |
| LP(1)N1i | LP * (7)Ag | 10.54 | 13.42 |
| LP(1)N4 | LP * (6)Ag | 32.19 | 37.78 |
| LP(1)N4 | LP * (7)Ag | 10.72 | 13.53 |
| LP(1)O6 | LP * (6)Ag | 3.78 | 4.31 |
| LP(1)O6 | LP * (8)Ag | 8.90 | 9.53 |
| LP(2)O6 | LP * (6)Ag | 9.54 | 11.40 |
| LP(2)O6 | LP * (8)Ag | 10.76 | 12.18 |
| LP(1)O5 | LP * (6)Ag | 3.27 | 4.08 |
| LP(1)O5 | LP * (9)Ag | 8.59 | 9.94 |
| LP(2)O5 | LP * (6)Ag | 3.61 | 4.27 |
| LP(2)O5 | LP * (9)Ag | 4.64 | 5.40 |
Bold for the net interaction energies.
The occupancy and energies of the interacting NBOs incorporated in the Ag–N and Ag–O interactions.
| NBO | [AgL(NO3)]2 | Free Species | ||
|---|---|---|---|---|
| Occup. | Energy | Occup. | Energy | |
| LP(1)N1 | 1.8252 | −0.4110 | 1.9211 | −0.3478 |
| LP(1)N1 | 1.8276 | −0.4131 | 1.9211 | −0.3518 |
| LP(1)O6 | 1.9578 | −0.6832 | 1.9850 | −0.5378 |
| LP(2)O6 | 1.8922 | −0.3633 | 1.9087 | −0.0441 |
| LP(1)O5 | 1.9603 | −0.7380 | 1.9856 | −0.5423 |
| LP(2)O5 | 1.8957 | −0.2981 | 1.9155 | −0.0406 |
| LP * (6)Ag | 0.2571 | 0.0119 | 0.0000 | 45.8839 |
| LP * (7)Ag | 0.0693 | 0.2325 | 0.0000 | −0.1125 |
| LP * (8)Ag | 0.0603 | 0.1036 | 0.0000 | 0.5923 |
| LP * (9)Ag | 0.0494 | 0.0874 | 0.0000 | 3.0170 |
| LP(1)N1 | 1.8356 | −0.4848 | 1.9245 | −0.4290 |
| LP(1)N1 | 1.8377 | −0.4872 | 1.9244 | −0.4331 |
| LP(1)O6 | 1.9579 | −0.7686 | 1.9853 | −0.6334 |
| LP(2)O6 | 1.8964 | −0.4460 | 1.9103 | −0.1259 |
| LP(1)O5 | 1.9605 | −0.8279 | 1.9859 | −0.6378 |
| LP(2)O5 | 1.8991 | −0.3769 | 1.9169 | −0.1227 |
| LP * (6)Ag | 0.2329 | 0.0808 | 0.0000 | 0.7750 |
| LP * (7)Ag | 0.0706 | 0.3025 | 0.0000 | 36.4326 |
| LP * (8)Ag | 0.0586 | 0.1721 | 0.0000 | 13.2220 |
| LP * (9)Ag | 0.0471 | 0.1535 | 0.0000 | −0.0243 |
Figure 7The most important natural orbitals included in the Ag–N and Ag–O interactions of the [AgL(NO complex. The near-spherical shape of the LP * (6)Ag anti-bonding natural orbital density can be noted.