metal-organic compounds
Tris(3,5-diaza-1-azonia-7-phosphaadamant-7-yl)(1,3,5-triaza-7-phospha-adamantane)silver(I) dicarbonate
aSchool of Agriculture and Science, Discipline of Chemistry, University of KwaZulu-Natal, Private Bag X54001, Durban, 4000, South Africa
*Correspondence e-mail: [email protected]
The title compound, [Ag(C6H13N3P)4(C6H12N3P)](CO3)2 or [Ag(PTAH)3(PTA)](CO3)2, is a discrete cationic silver(I) complex composed of one neutral 1,3,5-triaza-7-phosphaadamantane (C6H12N3P; PTA) ligand and three monoprotonated PTAH+ (C6H13N3P+) ligands coordinated to the silver center, resulting in an overall +4 charge balanced by two carbonate anions. The compound crystallizes in the rhombohedral R3 space group with the silver ion and PTA P atom lying on a crystallographic threefold axis, as does one of the carbonate C atoms. The silver ion adopts a tetrahedral geometry with P—Ag—P bond angles near the ideal 109°, and silver–phosphorus bond distances of 2.4699 (6) and 2.4683 (11) Å for Ag—PPTA and Ag—PPTAH, respectively. The crystal packing features N—H⋯O hydrogen bonds between the protonated N atoms of the PTAH ligands and the non-coordinating carbonate anions.
Keywords: crystal structure; neutral 1,3,5-triaza-7-phosphaadamantane (PTA); monoprotonated PTAH; carbonate ion; silver ion.
CCDC reference: 2578472
Structure description
The phosphine ligand 1,3,5-triaza-7-phosphaadamantane (C6H12N3P; PTA) has garnered growing interest because of its water solubility and distinctive coordination properties arising from a soft phosphorus donor and three nitrogen atoms (Krogstad et al., 2007
). While PTA mainly binds to metals via the phosphorus atom, its nitrogen atoms can enable diverse coordination modes, impacting complex stability and functionality (Darensbourg et al., 1997
). Silver(I) complexes with PTA display enhanced solubility and stability useful in catalysis and biomedical fields (Jimenez et al., 2017
; Armstrong et al., 2018
).
As part of our studies in this area, this work reports the synthesis and crystal structure of the title salt [Ag(PTAH)3(PTA)](CO3)2 (I), illustrating the coordination of silver(I) with both neutral PTA and protonated PTAH ligands in the presence of carbonate counter-ions.
The asymmetric unit of (I) consists of an Ag ion (site symmetry 3), a complete PTAH ligand, a fragment of PTA (P site symmetry 3), a complete carbonate anion and a fragment of a carbonate ion (C site symmetry 3), as shown in Fig. 1
. The complete cation is constructed through symmetry code 1 − y, x − y, z, which results in the silver atom coordinated with one neutral PTA and three monoprotonated PTA ligands, forming a cationic complex with a +4 charge balanced by two carbonate anions. The Ag center again exhibits tetrahedral geometry, with bond angles averaging close to the ideal tetrahedral angle of 109°. The Ag—P1 and Ag—P2 bond distances are 2.4699 (6) and 2.4683 (11) Å, respectively. The P—Ag—P bond angles are comparable to those of other tetra-coordinated metal phosphine complexes such as [Cu(PTA)4][BF4]·6H2O and [Cu(PTAH)4][NO3]5 with an average P—Cu—P bond angle of 109.5° (Kirillov et al., 2007
, Porchia et al., 2009
). In the extended structure of (I), the carbonate ions accept strong N—H⋯O hydrogen bonds arising from the protonated nitrogen atoms of the HPTA ligands (Fig. 2
). These hydrogen bonds are characterized by an N⋯O distance of 2.731 (3) Å and an N—H⋯O angle of 176°, indicating strong and directional intermolecular interactions (Table 1
).
| |||||||||||||||||
| Figure 1 The molecular structure of (I) shown with displacement ellipsoids at the 50% probability level. All C-bound hydrogen atoms are omitted for clarity. Symmetry codes: (i) 1 − y, x − y, z; (ii) 1 + y − x, 1 − x, z. |
| Figure 2 Representation of N—H⋯O hydrogen bonds in the crystal structure of (I) (blue and red dotted bonds). |
Synthesis and crystallization
Formic acid (0.3 ml, 8.0 mmol) was added slowly to silver(I) oxide (0.93 g, 4.0 mmol) in water (10 ml), generating silver(I) formate, which was filtered to remove unreacted material. PTA (1.26 g, 8.0 mmol) dissolved in acetone (20 ml) was added dropwise to the filtrate, yielding a cloudy solution. Slow evaporation of the filtered solution afforded X-ray quality crystals of (I) suitable for analysis. The carbonate ions in the product may have arisen from CO2 absorbed from the atmosphere in the presence of silver ions (Barnes et al., 1971
; Kong et al., 2005
).
Refinement
Crystal data, data collection and structure details are summarized in Table 2
.
|
Structural data
CCDC reference: 2578472
contains datablock I. DOI: https://doi.org/10.1107/S2414314626007935/hb4568sup1.cif
Structure factors: contains datablock I. DOI: https://doi.org/10.1107/S2414314626007935/hb4568Isup2.hkl
| [Ag(C6H13N3P)4(C6H12N3P)](CO3)2 | Dx = 1.506 Mg m−3 |
| Mr = 859.52 | Mo Kα radiation, λ = 0.71073 Å |
| Trigonal, R3 | Cell parameters from 9969 reflections |
| a = 15.7992 (12) Å | θ = 2.6–28.3° |
| c = 13.1502 (18) Å | µ = 0.78 mm−1 |
| V = 2842.7 (6) Å3 | T = 173 K |
| Z = 3 | Block, colourless |
| F(000) = 1518 | 0.36 × 0.24 × 0.22 mm |
| Bruker APEXII CCD diffractometer | 2981 reflections with I > 2σ(I) |
| Graphite monochromator | Rint = 0.022 |
| φ and ω scans | θmax = 28.3°, θmin = 2.2° |
| Absorption correction: multi-scan (SADABS; Krause et al., 2015) | h = −21→17 |
| Tmin = 0.767, Tmax = 0.847 | k = −15→21 |
| 18709 measured reflections | l = −17→17 |
| 3005 independent reflections |
| Refinement on F2 | Hydrogen site location: inferred from neighbouring sites |
| Least-squares matrix: full | H-atom parameters constrained |
| R[F2 > 2σ(F2)] = 0.019 | w = 1/[σ2(Fo2) + (0.031P)2 + 1.7576P] where P = (Fo2 + 2Fc2)/3 |
| wR(F2) = 0.048 | (Δ/σ)max = 0.001 |
| S = 1.08 | Δρmax = 0.77 e Å−3 |
| 3005 reflections | Δρmin = −0.32 e Å−3 |
| 172 parameters | Absolute structure: Flack x determined using 1393 quotients [(I+)-(I-)]/[(I+)+(I-)] (Parsons et al., 2013) |
| 13 restraints | Absolute structure parameter: −0.013 (5) |
| Primary atom site location: dual |
Geometry. All esds (except the esd in the dihedral angle between two l.s. planes) are estimated using the full covariance matrix. The cell esds are taken into account individually in the estimation of esds in distances, angles and torsion angles; correlations between esds in cell parameters are only used when they are defined by crystal symmetry. An approximate (isotropic) treatment of cell esds is used for estimating esds involving l.s. planes. |
Refinement. Refinement of F2 against ALL reflections. The weighted R-factor wR and goodness of fit S are based on F2, conventional R-factors R are based on F, with F set to zero for negative F2. The threshold expression of F2 > 2sigma(F2) is used only for calculating R-factors(gt) etc. and is not relevant to the choice of reflections for R-factors based on F2 are statistically about twice as large as those based on F, and R- factors based on ALL data will be even larger. |
| x | y | z | Uiso*/Ueq | ||
| C7 | 0.54971 (19) | 0.2863 (2) | 0.48563 (19) | 0.0157 (5) | |
| H7A | 0.518427 | 0.324777 | 0.465991 | 0.019* | |
| H7B | 0.505181 | 0.217503 | 0.465855 | 0.019* | |
| C8 | 0.5965 (2) | 0.6287 (2) | 0.1338 (2) | 0.0154 (5) | |
| H8A | 0.657144 | 0.668832 | 0.173223 | 0.018* | |
| H8B | 0.573099 | 0.672593 | 0.108986 | 0.018* | |
| C9 | 0.6073 (2) | 0.2336 (2) | 0.6302 (2) | 0.0157 (5) | |
| H9A | 0.605558 | 0.230630 | 0.705424 | 0.019* | |
| H9B | 0.567006 | 0.166064 | 0.604429 | 0.019* | |
| N6 | 0.56354 (17) | 0.29178 (17) | 0.59648 (17) | 0.0146 (4) | |
| C1 | 0.55921 (19) | 0.4978 (2) | 0.25461 (19) | 0.0134 (5) | |
| H1A | 0.508041 | 0.450520 | 0.301041 | 0.016* | |
| H1B | 0.616570 | 0.542448 | 0.296270 | 0.016* | |
| C2 | 0.48116 (19) | 0.37213 (18) | 0.08897 (18) | 0.0128 (5) | |
| H2A | 0.490640 | 0.340303 | 0.028633 | 0.015* | |
| H2B | 0.427627 | 0.320959 | 0.130269 | 0.015* | |
| C3 | 0.66953 (18) | 0.53329 (18) | 0.07806 (18) | 0.0114 (5) | |
| H3A | 0.731342 | 0.579620 | 0.112530 | 0.014* | |
| H3B | 0.686222 | 0.507770 | 0.017146 | 0.014* | |
| C4 | 0.53229 (19) | 0.5242 (2) | −0.01127 (19) | 0.0136 (5) | |
| H4A | 0.548519 | 0.492784 | −0.067233 | 0.016* | |
| H4B | 0.507300 | 0.564661 | −0.041889 | 0.016* | |
| C5 | 0.4345 (2) | 0.4943 (2) | 0.14521 (19) | 0.0149 (5) | |
| H5A | 0.406948 | 0.534767 | 0.120457 | 0.018* | |
| H5B | 0.385635 | 0.443460 | 0.190774 | 0.018* | |
| N1 | 0.52210 (16) | 0.55474 (17) | 0.20140 (16) | 0.0134 (4) | |
| N2 | 0.45315 (15) | 0.44554 (16) | 0.05507 (16) | 0.0120 (4) | |
| H2 | 0.391704 | 0.410798 | 0.014182 | 0.014* | |
| N3 | 0.61909 (16) | 0.58570 (16) | 0.04598 (16) | 0.0124 (4) | |
| P1 | 0.59476 (5) | 0.43083 (5) | 0.16489 (5) | 0.01082 (13) | |
| P2 | 0.666667 | 0.333333 | 0.41562 (8) | 0.0119 (2) | |
| Ag1 | 0.666667 | 0.333333 | 0.22792 (2) | 0.00986 (8) | |
| C6 | 0.34261 (19) | 0.22240 (19) | 0.32803 (19) | 0.0118 (5) | |
| O3 | 0.3890 (2) | 0.1866 (2) | 0.28981 (18) | 0.0361 (6) | |
| O6 | 0.32156 (19) | 0.27601 (18) | 0.27414 (18) | 0.0295 (5) | |
| O7 | 0.31591 (19) | 0.2064 (2) | 0.41785 (18) | 0.0316 (5) | |
| C10 | 0.666667 | 0.333333 | 0.8982 (3) | 0.0112 (7) | |
| O2 | 0.60792 (17) | 0.36433 (18) | 0.89697 (18) | 0.0279 (5) |
| U11 | U22 | U33 | U12 | U13 | U23 | |
| C7 | 0.0127 (12) | 0.0189 (13) | 0.0139 (11) | 0.0068 (11) | 0.0001 (9) | 0.0023 (10) |
| C8 | 0.0170 (13) | 0.0140 (12) | 0.0176 (12) | 0.0096 (11) | −0.0013 (10) | −0.0017 (10) |
| C9 | 0.0171 (13) | 0.0143 (12) | 0.0137 (11) | 0.0064 (10) | 0.0015 (9) | 0.0028 (9) |
| N6 | 0.0129 (11) | 0.0176 (12) | 0.0127 (10) | 0.0071 (9) | 0.0005 (8) | −0.0002 (9) |
| C1 | 0.0140 (12) | 0.0174 (13) | 0.0110 (10) | 0.0096 (10) | −0.0006 (9) | −0.0007 (9) |
| C2 | 0.0131 (12) | 0.0124 (12) | 0.0136 (11) | 0.0068 (10) | 0.0005 (9) | −0.0007 (9) |
| C3 | 0.0092 (11) | 0.0126 (11) | 0.0136 (10) | 0.0063 (10) | 0.0004 (9) | 0.0023 (9) |
| C4 | 0.0151 (12) | 0.0156 (12) | 0.0113 (10) | 0.0086 (10) | 0.0003 (9) | 0.0011 (10) |
| C5 | 0.0145 (12) | 0.0190 (13) | 0.0144 (11) | 0.0108 (11) | −0.0003 (9) | −0.0046 (9) |
| N1 | 0.0132 (10) | 0.0153 (11) | 0.0147 (10) | 0.0094 (9) | −0.0015 (8) | −0.0021 (8) |
| N2 | 0.0111 (10) | 0.0153 (11) | 0.0112 (9) | 0.0078 (9) | −0.0020 (8) | −0.0031 (8) |
| N3 | 0.0152 (10) | 0.0109 (10) | 0.0132 (9) | 0.0081 (9) | 0.0004 (8) | 0.0013 (8) |
| P1 | 0.0116 (3) | 0.0115 (3) | 0.0113 (3) | 0.0072 (3) | 0.0004 (2) | 0.0008 (2) |
| P2 | 0.0129 (3) | 0.0129 (3) | 0.0098 (4) | 0.00647 (16) | 0.000 | 0.000 |
| Ag1 | 0.00977 (10) | 0.00977 (10) | 0.01003 (12) | 0.00489 (5) | 0.000 | 0.000 |
| C6 | 0.0129 (11) | 0.0140 (11) | 0.0131 (10) | 0.0102 (9) | 0.0013 (8) | −0.0025 (8) |
| O3 | 0.0494 (14) | 0.0499 (14) | 0.0311 (11) | 0.0413 (12) | 0.0055 (10) | −0.0026 (10) |
| O6 | 0.0389 (14) | 0.0341 (13) | 0.0288 (12) | 0.0283 (12) | 0.0167 (10) | 0.0141 (10) |
| O7 | 0.0349 (13) | 0.0448 (15) | 0.0234 (11) | 0.0260 (12) | 0.0044 (10) | 0.0044 (10) |
| C10 | 0.0140 (11) | 0.0140 (11) | 0.0055 (15) | 0.0070 (5) | 0.000 | 0.000 |
| O2 | 0.0252 (11) | 0.0325 (12) | 0.0327 (12) | 0.0194 (10) | −0.0028 (9) | −0.0079 (9) |
| C7—H7A | 0.9900 | C3—H3B | 0.9900 |
| C7—H7B | 0.9900 | C3—N3 | 1.469 (3) |
| C7—N6 | 1.470 (3) | C3—P1 | 1.846 (3) |
| C7—P2 | 1.855 (3) | C4—H4A | 0.9900 |
| C8—H8A | 0.9900 | C4—H4B | 0.9900 |
| C8—H8B | 0.9900 | C4—N2 | 1.521 (3) |
| C8—N1 | 1.471 (3) | C4—N3 | 1.435 (3) |
| C8—N3 | 1.472 (3) | C5—H5A | 0.9900 |
| C9—H9A | 0.9900 | C5—H5B | 0.9900 |
| C9—H9B | 0.9900 | C5—N1 | 1.433 (3) |
| C9—N6i | 1.463 (4) | C5—N2 | 1.521 (3) |
| C9—N6 | 1.468 (4) | N2—H2 | 1.0000 |
| C1—H1A | 0.9900 | P1—Ag1 | 2.4699 (6) |
| C1—H1B | 0.9900 | P2—Ag1 | 2.4683 (11) |
| C1—N1 | 1.473 (3) | C6—O3 | 1.235 (3) |
| C1—P1 | 1.849 (3) | C6—O6 | 1.269 (3) |
| C2—H2A | 0.9900 | C6—O7 | 1.237 (3) |
| C2—H2B | 0.9900 | C10—O2ii | 1.247 (2) |
| C2—N2 | 1.501 (3) | C10—O2 | 1.247 (2) |
| C2—P1 | 1.848 (3) | C10—O2i | 1.247 (2) |
| C3—H3A | 0.9900 | ||
| H7A—C7—H7B | 107.9 | N3—C4—N2 | 111.7 (2) |
| N6—C7—H7A | 109.1 | H5A—C5—H5B | 107.9 |
| N6—C7—H7B | 109.1 | N1—C5—H5A | 109.3 |
| N6—C7—P2 | 112.30 (18) | N1—C5—H5B | 109.3 |
| P2—C7—H7A | 109.1 | N1—C5—N2 | 111.8 (2) |
| P2—C7—H7B | 109.1 | N2—C5—H5A | 109.3 |
| H8A—C8—H8B | 107.8 | N2—C5—H5B | 109.3 |
| N1—C8—H8A | 109.0 | C8—N1—C1 | 111.6 (2) |
| N1—C8—H8B | 109.0 | C5—N1—C8 | 109.9 (2) |
| N1—C8—N3 | 112.9 (2) | C5—N1—C1 | 112.7 (2) |
| N3—C8—H8A | 109.0 | C2—N2—C4 | 111.21 (19) |
| N3—C8—H8B | 109.0 | C2—N2—C5 | 111.54 (19) |
| H9A—C9—H9B | 107.6 | C2—N2—H2 | 108.4 |
| N6—C9—H9A | 108.7 | C4—N2—C5 | 108.8 (2) |
| N6i—C9—H9A | 108.7 | C4—N2—H2 | 108.4 |
| N6i—C9—H9B | 108.7 | C5—N2—H2 | 108.4 |
| N6—C9—H9B | 108.7 | C3—N3—C8 | 111.1 (2) |
| N6i—C9—N6 | 114.1 (2) | C4—N3—C8 | 110.8 (2) |
| C9ii—N6—C7 | 111.4 (2) | C4—N3—C3 | 111.9 (2) |
| C9—N6—C7 | 111.4 (2) | C1—P1—Ag1 | 120.57 (8) |
| C9ii—N6—C9 | 108.4 (2) | C2—P1—C1 | 97.77 (12) |
| H1A—C1—H1B | 107.9 | C2—P1—Ag1 | 120.17 (8) |
| N1—C1—H1A | 109.2 | C3—P1—C1 | 97.89 (12) |
| N1—C1—H1B | 109.2 | C3—P1—C2 | 98.11 (11) |
| N1—C1—P1 | 111.95 (16) | C3—P1—Ag1 | 117.54 (8) |
| P1—C1—H1A | 109.2 | C7i—P2—C7 | 97.50 (11) |
| P1—C1—H1B | 109.2 | C7i—P2—C7ii | 97.50 (11) |
| H2A—C2—H2B | 108.0 | C7ii—P2—C7 | 97.50 (11) |
| N2—C2—H2A | 109.4 | C7ii—P2—Ag1 | 119.75 (8) |
| N2—C2—H2B | 109.4 | C7i—P2—Ag1 | 119.75 (8) |
| N2—C2—P1 | 111.12 (17) | C7—P2—Ag1 | 119.75 (8) |
| P1—C2—H2A | 109.4 | P1i—Ag1—P1 | 109.333 (15) |
| P1—C2—H2B | 109.4 | P1ii—Ag1—P1 | 109.332 (15) |
| H3A—C3—H3B | 107.8 | P1ii—Ag1—P1i | 109.337 (15) |
| N3—C3—H3A | 109.1 | P2—Ag1—P1ii | 109.608 (15) |
| N3—C3—H3B | 109.1 | P2—Ag1—P1 | 109.608 (15) |
| N3—C3—P1 | 112.47 (17) | P2—Ag1—P1i | 109.608 (15) |
| P1—C3—H3A | 109.1 | O3—C6—O6 | 119.5 (2) |
| P1—C3—H3B | 109.1 | O3—C6—O7 | 121.0 (3) |
| H4A—C4—H4B | 107.9 | O7—C6—O6 | 119.5 (2) |
| N2—C4—H4A | 109.3 | O2i—C10—O2 | 119.982 (11) |
| N2—C4—H4B | 109.3 | O2i—C10—O2ii | 119.983 (11) |
| N3—C4—H4A | 109.3 | O2ii—C10—O2 | 119.984 (11) |
| N3—C4—H4B | 109.3 | ||
| N6—C7—P2—C7i | 49.24 (17) | N2—C5—N1—C8 | 57.1 (3) |
| N6—C7—P2—C7ii | −49.39 (16) | N2—C5—N1—C1 | −68.1 (3) |
| N6—C7—P2—Ag1 | 179.93 (15) | N3—C8—N1—C1 | 68.4 (3) |
| N6i—C9—N6—C7 | 67.4 (3) | N3—C8—N1—C5 | −57.3 (3) |
| N6i—C9—N6—C9ii | −55.5 (3) | N3—C3—P1—C1 | −49.28 (19) |
| N1—C8—N3—C3 | −68.3 (3) | N3—C3—P1—C2 | 49.79 (19) |
| N1—C8—N3—C4 | 56.7 (3) | N3—C3—P1—Ag1 | −179.92 (14) |
| N1—C1—P1—C2 | −50.6 (2) | N3—C4—N2—C2 | −68.5 (3) |
| N1—C1—P1—C3 | 48.8 (2) | N3—C4—N2—C5 | 54.7 (3) |
| N1—C1—P1—Ag1 | 177.40 (14) | P1—C1—N1—C8 | −60.9 (2) |
| N1—C5—N2—C2 | 67.2 (3) | P1—C1—N1—C5 | 63.3 (2) |
| N1—C5—N2—C4 | −55.8 (3) | P1—C2—N2—C4 | 60.7 (2) |
| N2—C2—P1—C1 | 50.14 (19) | P1—C2—N2—C5 | −60.9 (2) |
| N2—C2—P1—C3 | −49.03 (18) | P1—C3—N3—C8 | 61.3 (2) |
| N2—C2—P1—Ag1 | −177.56 (12) | P1—C3—N3—C4 | −63.1 (2) |
| N2—C4—N3—C8 | −55.4 (3) | P2—C7—N6—C9ii | 60.8 (3) |
| N2—C4—N3—C3 | 69.2 (3) | P2—C7—N6—C9 | −60.4 (3) |
| Symmetry codes: (i) −y+1, x−y, z; (ii) −x+y+1, −x+1, z. |
| D—H···A | D—H | H···A | D···A | D—H···A |
| N2—H2···O6iii | 1.00 | 1.73 | 2.731 (3) | 176 |
| Symmetry code: (iii) −x+y+1/3, −x+2/3, z−1/3. |
Acknowledgements
We thank the University of KwaZulu-Natal for its support of this research.
References
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