organic compounds
A hydrogen-bonded chain of rings in 7-amino-5-tert-butyl-2-methylpyrazolo[1,5-a]pyrimidine, and a hydrogen-bonded framework structure in 3,7-diamino-2,5-dimethylpyrazolo[1,5-a]pyrimidine monohydrate
aGrupo de Investigación de Compuestos Heterocíclicos, Departamento de Química, Universidad de Valle, AA 25360 Cali, Colombia, bDepartamento de Química Inorgánica y Orgánica, Universidad de Jaén, 23071 Jaén, Spain, cDepartment of Chemistry, University of Aberdeen, Meston Walk, Old Aberdeen AB24 3UE, Scotland, and dSchool of Chemistry, University of St Andrews, Fife KY16 9ST, Scotland
*Correspondence e-mail: cg@st-andrews.ac.uk
In 7-amino-5-tert-butyl-2-methylpyrazolo[1,5-a]pyrimidine, C11H16N4, which crystallizes with Z′ = 2 in the P, the independent molecules are linked by four N—H⋯N hydrogen bonds into chains containing three types of ring. In 3,7-diamino-2,5-dimethylpyrazolo[1,5-a]pyrimidine monohydrate, C8H11N5·H2O, the molecular components are linked into a three-dimensional framework structure by a combination of O—H⋯N, N—H⋯N and N—H⋯O hydrogen bonds.
Comment
We report here the structures of 7-amino-5-tert-butyl-2-methylpyrazolo[1,5-a]pyrimidine, (I) (Fig. 1), and 3,7-diamino-2,5-dimethylpyrazolo[1,5-a]pyrimidine monohydrate, (II) (Fig. 2), which we compare with the structure of 7-amino-2,5-dimethylpyrazolo[1,5-a]pyrimidine hemihydrate, (III). The structure of (III) was determined many years ago using diffraction data collected at ambient temperature (Mornon et al., 1975) and it was recently redetermined using diffraction data collected at 120 K (Portilla et al., 2006). The heterocyclic system in (I) differs from that in (III) only in the replacement of the methyl substituent on the pyrimidine ring by a tert-butyl substituent, while the heterocyclic system in (II) differs from that in (III) only by the incorporation of a second amino group, and this provides an opportunity to observe the effects of simple changes of substituent upon the supramolecular aggregation. Compound (I) was prepared in a similar fashion to compound (III) (Portilla et al., 2006), here using a solvent-free cyclocondensation between 5-amino-3-methyl-1H-pyrazole and 4,4-dimethyl-3-oxopentanenitrile induced by microwave irradiation. Compound (II) was prepared by nitrosation of (III) to yield (IV), followed by palladium-catalyzed reduction with hydrazine.
The pattern of the bond lengths in both (I) and (II) closely mimics the pattern found for (III), and it is not necessary to discuss this in detail again. Following the earlier discussion (Portilla et al., 2006), it can be concluded that in all three of these compounds there is a considerable degree of aromatic 10-π-electron delocalization around the periphery of the heterocyclic components.
Compound (I) crystallizes with Z′ = 2, and within the selected (Fig. 1) the two independent molecules are linked by two N—H⋯N hydrogen bonds (Table 1), forming an R22(10) (Bernstein et al., 1995) dimer. Dimers of this type are then linked by two further N—H⋯N hydrogen bonds to form a complex chain of rings. Atoms N17 and N27 in the dimeric unit at (x, y, z) act as hydrogen-bond donors via atoms H17B and H27B, respectively, to the ring atoms N24 at (−x, 1 − y, 2 − z) and N14 at (1 − x, 1 − y, 1 − z), so generating by inversion two distinct R44(14) motifs centred at (0, , 1) and (, , ), respectively. Propagation by inversion of these two interactions then generates a chain of edge-fused rings running parallel to the [10] direction, with R44(14) rings containing pairs of N17 atoms centred at (n, , 1 − n) (n = zero or integer), R44(14) rings containing pairs of N27 atoms centred at ( + n, , − n) (n = zero or integer) and R22(10) rings occupying the intermediate locations in the chain (Fig. 3).
Within the selected (Fig. 2), the components are linked by an N—H⋯O hydrogen bond (Table 2). The amino group bonded to atom C3 exhibits orientational disorder, and this was modelled in terms of one H-atom site with full occupancy and two H-atom sites each with 0.5 occupancy. While such disorder undoubtedly complicates the analysis and the full description of the overall supramolecular aggregation, it is possible in this case to demonstrate the occurrence of a three-dimensional hydrogen-bonded structure without reference to this disordered amino group. It may be noted here that the only two possible hydrogen-bond acceptors adjacent to atom N3 in the molecule at (x, y, z), viz. atoms O1 and N3 in the molecules are (2 − x, + y, − z) and (2 − x, 2 − y, 1 − z), respectively, are both distant from the reference N3 atom by more than 3.2 Å (Table 2), and the corresponding D⋯A and H⋯A distances are probably too long for significant hydrogen bonding to occur. Hence, without effective tethering via hydrogen bonds, the amino group based on N3 is more or less free to rotate about the N3—C3 bond and this possibly accounts for the observed disorder. Therefore, we analyse the supramolecular aggregation of compound (II) without reference to the amino group based on N3.
of compound (II)Two O—H⋯N hydrogen bonds link the bimolecular aggregates into a sheet, and adjacent sheets are linked by paired N—H⋯N hydrogen bonds to form a single three-dimensional framework structure. The water molecule at (x, y, z) acts as hydrogen-bond donor, via atoms H1A and H1B, to atoms N1 at (1 − x, − + y, − z) and N4 at (2 − x, − + y, − z), so forming a sheet parallel to (001) built from a single type of R66(22) ring (Fig. 4). Two sheets of this type pass through each generated by the 21 screw axes at y = and y = , and lying in the domains −0.04 < z < 0.54 and 0.46 < z < 1.04, respectively. The (001) sheets are linked by a centrosymmetric R22(10) motif, in which paired N—H⋯N hydrogen bonds link the heterocyclic molecules at (x, y, z) and (1 − x, 1 − y, 1 − z) (Fig. 5). Propagation of this motif links each (001) sheet to the two adjacent sheets, so forming a continuous framework.
In compound (III), where the water molecules lie across twofold rotation axes in the C2, the molecular components are linked by a combination of O—H⋯N, N—H⋯N and N—H⋯O hydrogen bonds into a three-dimensional framework structure (Portilla et al., 2006). Within that structure, it is possible to identify a centrosymmetric R22(10) motif, precisely similar to that found here in compound (II) (Fig. 5), but there are no further similarities between the supramolecular structures of (I), (II) and (III).
Experimental
For the synthesis of compound (I), equimolar quantities (2 mmol of each component) of 5-amino-3-methyl-1H-pyrazole and 4,4-dimethyl-3-oxopentanenitrile were placed in an open Pyrex glass vessel and irradiated in a domestic microwave oven for 2.5 min at 600 W. The reaction mixture was extracted with ethanol. After removal of the solvent, the resulting product, (I), was crystallized from a solution in ethanol to give colourless crystals suitable for single-crystal X-ray diffraction (m.p. 490–491 K, yield 90%). MS (30 eV) m/z (%): 204 (100, M+), 189 (12). For the synthesis of compound (II), a solution of sodium nitrite (30 mmol) in water (10 ml) was added to a solution of 7-amino-2,5-dimethylpyrazolo[1,5-a]pyrimidine (Portilla et al., 2006) (10 mmol) in ethanol (20 ml). To this solution was then added, dropwise at 273–283 K with magnetic stirring, a mixture of concentrated sulfuric acid (5 ml), water (10 ml) and ethanol (10 ml). The resulting solid was collected by filtration and crystallized from a solution in ethanol to yield 7-amino-2,5-dimethyl-3-nitrosopyrazolo[1,5-a]pyrimidine as green crystals (m.p. 501–502 K, yield 95%). MS (30 eV) m/z (%): 191 (100, M+), 150 (27), 135 (42). To a solution of this nitroso compound (2 mmol) in methanol (20 ml) was added hydrazine hydrate (6 mmol) and a catalytic amount (50 mg) of palladium on This mixture was then heated under reflux with magnetic stirring for 3 h. After removal of the catalyst from the hot solution by filtration, the filtrate was cooled and the resulting solid product, (II), was collected by filtration and crystallized from a solution in ethanol to yield yellow crystals suitable for single-crystal X-ray diffraction (m.p. 484–486 K, yield 80%). MS (30 eV) m/z (%): 177 (57, M+), 136 (31), 109 (100).
Compound (I)
Crystal data
|
Refinement
|
Compound (II)
Crystal data
|
Refinement
|
Compound (I) crystallized in the triclinic system; P was assumed and confirmed by the analysis. For compound (II), the P21/c was uniquely assigned from the All H atoms were located in difference maps, and then treated as riding atoms. For compound (I), the distances were C—H = 0.95 (aromatic) or 0.98 Å (methyl) and N—H = 0.88 Å, and for compound (II), the distances were C—H = 0.93 (aromatic) or 0.96 Å (methyl), N—H = 0.86–0.87 Å and O—H = 0.90 Å, with Uiso(H) = kUeq(C, N,O), where k = 1.5 for O—H or methyl groups and 1.2 for all other H atoms. In compound (II), the amino group containing N3 was modelled using three sites, with one, labelled H3A, of unit occupancy and two others, labelled H3B and H3C, each with 0.5 occupancy.
For both compounds, data collection: COLLECT (Nonius, 1999); cell DENZO (Otwinowski & Minor, 1997) and COLLECT; data reduction: DENZO and COLLECT; program(s) used to solve structure: SIR2004 (Burla et al., 2005); program(s) used to refine structure: OSCAIL (McArdle, 2003) and SHELXL97 (Sheldrick, 1997); molecular graphics: PLATON (Spek, 2003); software used to prepare material for publication: SHELXL97 and PRPKAPPA (Ferguson, 1999).
Supporting information
10.1107/S0108270106025893/sk3040sup1.cif
contains datablocks global, I, II. DOI:Structure factors: contains datablock I. DOI: 10.1107/S0108270106025893/sk3040Isup2.hkl
Structure factors: contains datablock II. DOI: 10.1107/S0108270106025893/sk3040IIsup3.hkl
For the synthesis of compound (I), equimolar quantities (2 mmol of each component) of 5-amino-3-methyl-1H-pyrazole and 4,4-dimethyl-3-oxopentanenitrile were placed in an open Pyrex glass vessel and irradiated in a domestic microwave oven for 2.5 min at 600 W. The reaction mixture was extracted with ethanol. After removal of the solvent, the resulting product, (I), was crystallized from a solution in ethanol to give colourless crystals suitable for single-crystal X-ray diffraction (m.p. 490–491 K, yield 90%). MS (30 eV) m/z (%) 204 (100, M+), 189?(12). For the synthesis of compound (II), a solution of sodium nitrite (30 mmol) in water (10 ml) was added to a solution of 7-amino-2,5-dimethylpyrazolo[1,5-a]pyrimidine (Portilla et al., 2006) (10 mmol) in ethanol (20 ml). To this solution was then added, dropwise at 273–283 K with magnetic stirring, a mixture of concentrated sulfuric acid (5 ml), water (10 ml) and ethanol (10 ml). The resulting solid was collected by filtration and crystallized from a solution in ethanol to yield 7-amino-2,5-dimethyl-3-nitrosopyrazolo[1,5-a]pyrimidine as green crystals (m.p. 501–502 K, yield 95%). MS (30 eV) m/z (%) 191 (100, M+), 150?(27), 135?(42). To a solution of this nitroso compound (2 mmol) in methanol (20 ml) was added hydrazine hydrate (6 mmol) and a catalytic amount (50 mg) of palladium on
This mixture was then heated under reflux with magnetic stirring for 3 h. After removal of the catalyst from the hot solution by filtration, the filtrate was cooled and the resulting solid product, (II), was collected by filtration and crystallized from a solution in ethanol to yield yellow crystals suitable for single-crystal X-ray diffraction (m.p. 484–486 K, yield 80%). MS (30 eV) m/z (%) 177 (57, M+), 136?(31), 109?(100).Compound (I) crystallized in the triclinic system; 1 was assumed and confirmed by the analysis. H atoms were treated as riding atoms, with C—H(aromatic) = 0.95 Å and Uiso(H) = 1.2Ueq(C), C—H(methyl) = 0.98 Å and Uiso(H) = 1.5Ueq(C), and N—H 0.88 Å and Uiso = 1.2Ueq(N).
PFor both compounds, data collection: COLLECT (Nonius, 1999); cell
DENZO (Otwinowski & Minor, 1997) and COLLECT; data reduction: DENZO and COLLECT; program(s) used to solve structure: SIR2004 (Burla et al., 2005); program(s) used to refine structure: OSCAIL (McArdle, 2003) and SHELXL97 (Sheldrick, 1997); molecular graphics: PLATON (Spek, 2003); software used to prepare material for publication: SHELXL97 and PRPKAPPA (Ferguson, 1999).Fig. 1. The two independent molecules of compound (I), showing the atom-labelling scheme and the N—H···N hydrogen bonds (dashed lines) within the selected asymmetric unit. Displacement ellipsoids are drawn at the 30% probability level and H atoms are shown as small spheres of arbitrary radii. | |
Fig. 2. The independent components of compound (II), showing the atom-labelling scheme and the N—H···O hydrogen bond (dashed line) within the selected asymmetric unit. Displacement ellipsoids are drawn at the 30% probability level and H atoms are shown as small spheres of arbitrary radii. The atoms bonded to atom N3 are disordered; see text for discussion. | |
Fig. 3. A stereoview of part of the crystal structure of compound (I), showing the formation of a chain along [101] built from R22(10) rings and two types of R44(14) ring. For the sake of clarity, H atoms bonded to C or N atoms which are not involved in the motifs shown have been omitted. | |
Fig. 4. A stereoview of part of the crystal structure of compound (II), showing the formation of a sheet of R66(22) rings parallel to (001). For the sake of clarity, H atoms bonded to C or N atoms which are not involved in the motif shown have been omitted. | |
Fig. 5. A part of the crystal structure of compound (II), showing the formation of the R22(10) motif linking the (001) sheets. For the sake of clarity, the water molecules and H atoms bonded to C or N atoms which are not involved in the motif shown have been omitted. Atoms marked with an asterisk (*) are at the symmetry position (1 − x, 1 − y, 1 − z). |
C11H16N4 | Z = 4 |
Mr = 204.28 | F(000) = 440 |
Triclinic, P1 | Dx = 1.182 Mg m−3 |
Hall symbol: -P 1 | Mo Kα radiation, λ = 0.71073 Å |
a = 9.8216 (5) Å | Cell parameters from 4863 reflections |
b = 11.3582 (7) Å | θ = 1.8–26.8° |
c = 12.2783 (8) Å | µ = 0.08 mm−1 |
α = 70.429 (3)° | T = 120 K |
β = 69.895 (4)° | Plate, colourless |
γ = 66.454 (4)° | 0.15 × 0.10 × 0.04 mm |
V = 1147.66 (12) Å3 |
Bruker Nonius KappaCCD area-detector diffractometer | 4863 independent reflections |
Radiation source: Bruker-Nonius FR591 rotating anode | 2931 reflections with I > 2σ(I) |
Graphite monochromator | Rint = 0.066 |
Detector resolution: 9.091 pixels mm-1 | θmax = 26.8°, θmin = 1.8° |
ϕ and ω scans | h = −12→12 |
Absorption correction: multi-scan (SADABS; Sheldrick, 2003) | k = −14→14 |
Tmin = 0.982, Tmax = 0.997 | l = −15→15 |
22882 measured reflections |
Refinement on F2 | Secondary atom site location: difference Fourier map |
Least-squares matrix: full | Hydrogen site location: inferred from neighbouring sites |
R[F2 > 2σ(F2)] = 0.056 | H-atom parameters constrained |
wR(F2) = 0.150 | w = 1/[σ2(Fo2) + (0.0716P)2 + 0.1822P] where P = (Fo2 + 2Fc2)/3 |
S = 1.04 | (Δ/σ)max < 0.001 |
4863 reflections | Δρmax = 0.22 e Å−3 |
280 parameters | Δρmin = −0.23 e Å−3 |
0 restraints | Extinction correction: SHELXL97 (Sheldrick, 1997), Fc*=kFc[1+0.001xFc2λ3/sin(2θ)]-1/4 |
Primary atom site location: structure-invariant direct methods | Extinction coefficient: 0.015 (3) |
C11H16N4 | γ = 66.454 (4)° |
Mr = 204.28 | V = 1147.66 (12) Å3 |
Triclinic, P1 | Z = 4 |
a = 9.8216 (5) Å | Mo Kα radiation |
b = 11.3582 (7) Å | µ = 0.08 mm−1 |
c = 12.2783 (8) Å | T = 120 K |
α = 70.429 (3)° | 0.15 × 0.10 × 0.04 mm |
β = 69.895 (4)° |
Bruker Nonius KappaCCD area-detector diffractometer | 4863 independent reflections |
Absorption correction: multi-scan (SADABS; Sheldrick, 2003) | 2931 reflections with I > 2σ(I) |
Tmin = 0.982, Tmax = 0.997 | Rint = 0.066 |
22882 measured reflections |
R[F2 > 2σ(F2)] = 0.056 | 0 restraints |
wR(F2) = 0.150 | H-atom parameters constrained |
S = 1.04 | Δρmax = 0.22 e Å−3 |
4863 reflections | Δρmin = −0.23 e Å−3 |
280 parameters |
x | y | z | Uiso*/Ueq | ||
N11 | 0.37049 (17) | 0.36806 (16) | 0.61371 (14) | 0.0282 (4) | |
C12 | 0.4201 (2) | 0.36923 (19) | 0.49663 (17) | 0.0280 (5) | |
C121 | 0.3062 (2) | 0.4204 (2) | 0.42243 (18) | 0.0330 (5) | |
C13 | 0.5786 (2) | 0.32068 (19) | 0.45904 (17) | 0.0287 (5) | |
C13a | 0.6333 (2) | 0.28735 (18) | 0.55905 (16) | 0.0255 (5) | |
N14 | 0.77577 (17) | 0.23631 (16) | 0.57755 (13) | 0.0276 (4) | |
C15 | 0.7861 (2) | 0.21580 (18) | 0.68892 (16) | 0.0262 (5) | |
C151 | 0.9485 (2) | 0.1559 (2) | 0.70726 (17) | 0.0304 (5) | |
C152 | 1.0307 (2) | 0.0311 (2) | 0.65728 (19) | 0.0427 (6) | |
C153 | 0.9487 (2) | 0.1201 (2) | 0.83874 (18) | 0.0367 (5) | |
C154 | 1.0342 (2) | 0.2564 (2) | 0.6401 (2) | 0.0434 (6) | |
C16 | 0.6581 (2) | 0.24704 (19) | 0.78210 (17) | 0.0275 (5) | |
C17 | 0.5117 (2) | 0.29950 (19) | 0.76373 (16) | 0.0272 (5) | |
N17 | 0.38121 (19) | 0.33238 (17) | 0.84558 (14) | 0.0383 (5) | |
N17a | 0.50345 (17) | 0.31734 (15) | 0.65074 (13) | 0.0254 (4) | |
N21 | 0.04316 (18) | 0.42094 (15) | 0.86094 (14) | 0.0291 (4) | |
C22 | −0.0314 (2) | 0.3620 (2) | 0.96560 (17) | 0.0302 (5) | |
C221 | 0.0523 (3) | 0.2316 (2) | 1.03234 (19) | 0.0389 (6) | |
C23 | −0.1849 (2) | 0.4373 (2) | 0.99916 (17) | 0.0316 (5) | |
C23a | −0.2078 (2) | 0.55158 (19) | 0.91046 (16) | 0.0266 (5) | |
N24 | −0.32966 (18) | 0.66167 (16) | 0.89615 (14) | 0.0296 (4) | |
C25 | −0.3102 (2) | 0.75522 (19) | 0.79646 (16) | 0.0268 (5) | |
C251 | −0.4501 (2) | 0.8775 (2) | 0.78242 (17) | 0.0319 (5) | |
C252 | −0.4790 (3) | 0.9545 (2) | 0.8740 (2) | 0.0423 (6) | |
C253 | −0.4296 (3) | 0.9684 (2) | 0.65822 (19) | 0.0498 (7) | |
C254 | −0.5900 (2) | 0.8350 (2) | 0.8085 (2) | 0.0490 (6) | |
C26 | −0.1701 (2) | 0.74355 (19) | 0.71148 (16) | 0.0268 (5) | |
C27 | −0.0442 (2) | 0.63184 (19) | 0.72674 (16) | 0.0259 (5) | |
N27 | 0.09465 (18) | 0.60902 (17) | 0.65322 (14) | 0.0353 (5) | |
N27a | −0.06730 (17) | 0.53745 (15) | 0.82785 (13) | 0.0257 (4) | |
H12A | 0.2054 | 0.4660 | 0.4675 | 0.049* | |
H12B | 0.3002 | 0.3466 | 0.4020 | 0.049* | |
H12C | 0.3385 | 0.4822 | 0.3492 | 0.049* | |
H13 | 0.6375 | 0.3121 | 0.3808 | 0.034* | |
H15A | 0.9757 | −0.0330 | 0.7002 | 0.064* | |
H15B | 1.1357 | −0.0076 | 0.6673 | 0.064* | |
H15C | 1.0331 | 0.0544 | 0.5724 | 0.064* | |
H15D | 0.8992 | 0.2000 | 0.8700 | 0.055* | |
H15E | 1.0545 | 0.0802 | 0.8470 | 0.055* | |
H15F | 0.8926 | 0.0572 | 0.8835 | 0.055* | |
H15G | 1.0369 | 0.2795 | 0.5552 | 0.065* | |
H15H | 1.1390 | 0.2181 | 0.6504 | 0.065* | |
H15J | 0.9813 | 0.3360 | 0.6719 | 0.065* | |
H16A | 0.6714 | 0.2322 | 0.8592 | 0.033* | |
H17a | 0.2931 | 0.3646 | 0.8258 | 0.046* | |
H17B | 0.3832 | 0.3219 | 0.9194 | 0.046* | |
H22A | 0.1404 | 0.1857 | 0.9766 | 0.058* | |
H22B | −0.0165 | 0.1785 | 1.0729 | 0.058* | |
H22C | 0.0879 | 0.2448 | 1.0914 | 0.058* | |
H23 | −0.2587 | 0.4144 | 1.0690 | 0.038* | |
H25A | −0.4955 | 0.8981 | 0.9544 | 0.064* | |
H25B | −0.5698 | 1.0327 | 0.8674 | 0.064* | |
H25C | −0.3900 | 0.9818 | 0.8587 | 0.064* | |
H25D | −0.3422 | 0.9981 | 0.6422 | 0.075* | |
H25E | −0.5225 | 1.0451 | 0.6541 | 0.075* | |
H25F | −0.4110 | 0.9204 | 0.5987 | 0.075* | |
H25G | −0.5744 | 0.7876 | 0.7493 | 0.073* | |
H25H | −0.6814 | 0.9132 | 0.8047 | 0.073* | |
H25J | −0.6039 | 0.7769 | 0.8883 | 0.073* | |
H26 | −0.1612 | 0.8130 | 0.6426 | 0.032* | |
H27a | 0.1679 | 0.5348 | 0.6707 | 0.042* | |
H27B | 0.1133 | 0.6681 | 0.5871 | 0.042* |
U11 | U22 | U33 | U12 | U13 | U23 | |
N11 | 0.0254 (9) | 0.0316 (10) | 0.0264 (10) | −0.0094 (7) | −0.0078 (7) | −0.0034 (7) |
C12 | 0.0336 (12) | 0.0251 (11) | 0.0268 (11) | −0.0134 (9) | −0.0078 (9) | −0.0026 (8) |
C121 | 0.0337 (12) | 0.0360 (12) | 0.0311 (12) | −0.0120 (10) | −0.0121 (9) | −0.0045 (9) |
C13 | 0.0286 (11) | 0.0332 (12) | 0.0231 (11) | −0.0110 (9) | −0.0041 (9) | −0.0058 (9) |
C13a | 0.0255 (11) | 0.0255 (11) | 0.0234 (11) | −0.0106 (8) | −0.0027 (9) | −0.0033 (8) |
N14 | 0.0261 (9) | 0.0324 (10) | 0.0228 (9) | −0.0105 (7) | −0.0056 (7) | −0.0033 (7) |
C15 | 0.0296 (11) | 0.0270 (11) | 0.0233 (11) | −0.0129 (9) | −0.0073 (9) | −0.0019 (8) |
C151 | 0.0269 (11) | 0.0349 (12) | 0.0264 (11) | −0.0086 (9) | −0.0069 (9) | −0.0045 (9) |
C152 | 0.0348 (13) | 0.0498 (15) | 0.0388 (13) | −0.0019 (11) | −0.0125 (10) | −0.0153 (11) |
C153 | 0.0344 (12) | 0.0401 (13) | 0.0347 (12) | −0.0077 (10) | −0.0145 (10) | −0.0066 (10) |
C154 | 0.0354 (13) | 0.0528 (15) | 0.0420 (14) | −0.0190 (11) | −0.0157 (10) | 0.0015 (11) |
C16 | 0.0289 (11) | 0.0303 (11) | 0.0216 (10) | −0.0091 (9) | −0.0077 (9) | −0.0029 (8) |
C17 | 0.0311 (12) | 0.0266 (11) | 0.0209 (11) | −0.0096 (9) | −0.0039 (9) | −0.0038 (8) |
N17 | 0.0287 (10) | 0.0536 (12) | 0.0229 (9) | −0.0040 (9) | −0.0055 (8) | −0.0090 (8) |
N17a | 0.0245 (9) | 0.0288 (9) | 0.0213 (9) | −0.0096 (7) | −0.0057 (7) | −0.0023 (7) |
N21 | 0.0301 (9) | 0.0271 (9) | 0.0276 (10) | −0.0061 (8) | −0.0104 (8) | −0.0035 (7) |
C22 | 0.0401 (13) | 0.0311 (12) | 0.0242 (11) | −0.0150 (10) | −0.0101 (9) | −0.0054 (9) |
C221 | 0.0484 (14) | 0.0344 (13) | 0.0342 (12) | −0.0143 (10) | −0.0152 (10) | −0.0015 (10) |
C23 | 0.0338 (12) | 0.0343 (12) | 0.0238 (11) | −0.0147 (10) | −0.0016 (9) | −0.0043 (9) |
C23a | 0.0267 (11) | 0.0307 (12) | 0.0218 (10) | −0.0106 (9) | −0.0015 (9) | −0.0081 (9) |
N24 | 0.0281 (9) | 0.0314 (10) | 0.0250 (9) | −0.0090 (8) | −0.0028 (7) | −0.0057 (8) |
C25 | 0.0286 (11) | 0.0302 (11) | 0.0232 (11) | −0.0099 (9) | −0.0064 (9) | −0.0076 (9) |
C251 | 0.0306 (11) | 0.0346 (12) | 0.0281 (11) | −0.0072 (9) | −0.0076 (9) | −0.0080 (9) |
C252 | 0.0450 (14) | 0.0340 (13) | 0.0442 (14) | −0.0060 (11) | −0.0104 (11) | −0.0131 (10) |
C253 | 0.0442 (14) | 0.0439 (14) | 0.0379 (14) | 0.0043 (11) | −0.0104 (11) | −0.0034 (11) |
C254 | 0.0341 (13) | 0.0500 (15) | 0.0645 (17) | −0.0063 (11) | −0.0171 (12) | −0.0189 (13) |
C26 | 0.0299 (11) | 0.0282 (11) | 0.0216 (10) | −0.0114 (9) | −0.0069 (9) | −0.0018 (8) |
C27 | 0.0255 (11) | 0.0308 (11) | 0.0213 (10) | −0.0112 (9) | −0.0034 (9) | −0.0055 (9) |
N27 | 0.0270 (10) | 0.0376 (10) | 0.0258 (9) | −0.0067 (8) | −0.0030 (8) | 0.0036 (8) |
N27a | 0.0267 (9) | 0.0274 (9) | 0.0208 (9) | −0.0088 (7) | −0.0053 (7) | −0.0032 (7) |
N11—C12 | 1.347 (2) | N21—C22 | 1.343 (2) |
N11—N17a | 1.370 (2) | N21—N27a | 1.374 (2) |
C12—C13 | 1.390 (3) | C22—C23 | 1.397 (3) |
C12—C121 | 1.499 (3) | C22—C221 | 1.490 (3) |
C121—H12A | 0.98 | C221—H22A | 0.98 |
C121—H12B | 0.98 | C221—H22B | 0.98 |
C121—H12C | 0.98 | C221—H22C | 0.98 |
C13—C13a | 1.385 (3) | C23—C23a | 1.382 (3) |
C13—H13 | 0.95 | C23—H23 | 0.95 |
C13a—N14 | 1.352 (2) | C23a—N24 | 1.352 (2) |
C13a—N17a | 1.390 (2) | C23a—N27a | 1.389 (2) |
N14—C15 | 1.341 (2) | N24—C25 | 1.339 (2) |
C15—C16 | 1.393 (3) | C25—C26 | 1.400 (3) |
C15—C151 | 1.528 (3) | C25—C251 | 1.525 (3) |
C151—C153 | 1.527 (3) | C251—C253 | 1.527 (3) |
C151—C154 | 1.534 (3) | C251—C254 | 1.532 (3) |
C151—C152 | 1.538 (3) | C251—C252 | 1.533 (3) |
C152—H15A | 0.98 | C252—H25A | 0.98 |
C152—H15B | 0.98 | C252—H25B | 0.98 |
C152—H15C | 0.98 | C252—H25C | 0.98 |
C153—H15D | 0.98 | C253—H25D | 0.98 |
C153—H15E | 0.98 | C253—H25E | 0.98 |
C153—H15F | 0.98 | C253—H25F | 0.98 |
C154—H15G | 0.98 | C254—H25G | 0.98 |
C154—H15H | 0.98 | C254—H25H | 0.98 |
C154—H15J | 0.98 | C254—H25J | 0.98 |
C16—C17 | 1.386 (3) | C26—C27 | 1.386 (3) |
C16—H16A | 0.95 | C26—H26 | 0.95 |
C17—N17 | 1.333 (2) | C27—N27 | 1.330 (2) |
C17—N17a | 1.360 (2) | C27—N27a | 1.361 (2) |
N17—H17a | 0.88 | N27—H27a | 0.88 |
N17—H17B | 0.88 | N27—H27B | 0.88 |
C12—N11—N17a | 103.14 (14) | C22—N21—N27a | 103.35 (15) |
N11—C12—C13 | 113.05 (17) | N21—C22—C23 | 112.59 (17) |
N11—C12—C121 | 119.53 (17) | N21—C22—C221 | 119.71 (18) |
C13—C12—C121 | 127.42 (18) | C23—C22—C221 | 127.69 (19) |
C12—C121—H12A | 109.5 | C22—C221—H22A | 109.5 |
C12—C121—H12B | 109.5 | C22—C221—H22B | 109.5 |
H12A—C121—H12B | 109.5 | H22A—C221—H22B | 109.5 |
C12—C121—H12C | 109.5 | C22—C221—H22C | 109.5 |
H12A—C121—H12C | 109.5 | H22A—C221—H22C | 109.5 |
H12B—C121—H12C | 109.5 | H22B—C221—H22C | 109.5 |
C13a—C13—C12 | 105.90 (17) | C23a—C23—C22 | 106.28 (17) |
C13a—C13—H13 | 127.0 | C23a—C23—H23 | 126.9 |
C12—C13—H13 | 127.0 | C22—C23—H23 | 126.9 |
N14—C13a—C13 | 133.06 (18) | N24—C23a—C23 | 133.25 (18) |
N14—C13a—N17a | 121.82 (17) | N24—C23a—N27a | 121.79 (16) |
C13—C13a—N17a | 105.11 (16) | C23—C23a—N27a | 104.93 (17) |
C15—N14—C13a | 116.77 (16) | C25—N24—C23a | 116.89 (16) |
N14—C15—C16 | 122.64 (17) | N24—C25—C26 | 122.56 (18) |
N14—C15—C151 | 115.46 (16) | N24—C25—C251 | 115.60 (16) |
C16—C15—C151 | 121.90 (17) | C26—C25—C251 | 121.82 (17) |
C153—C151—C15 | 111.88 (16) | C25—C251—C253 | 112.87 (17) |
C153—C151—C154 | 108.22 (17) | C25—C251—C254 | 109.31 (17) |
C15—C151—C154 | 109.05 (16) | C253—C251—C254 | 109.20 (18) |
C153—C151—C152 | 109.42 (17) | C25—C251—C252 | 108.22 (16) |
C15—C151—C152 | 108.62 (17) | C253—C251—C252 | 108.59 (19) |
C154—C151—C152 | 109.62 (18) | C254—C251—C252 | 108.57 (17) |
C151—C152—H15A | 109.5 | C251—C252—H25A | 109.5 |
C151—C152—H15B | 109.5 | C251—C252—H25B | 109.5 |
H15A—C152—H15B | 109.5 | H25A—C252—H25B | 109.5 |
C151—C152—H15C | 109.5 | C251—C252—H25C | 109.5 |
H15A—C152—H15C | 109.5 | H25A—C252—H25C | 109.5 |
H15B—C152—H15C | 109.5 | H25B—C252—H25C | 109.5 |
C151—C153—H15D | 109.5 | C251—C253—H25D | 109.5 |
C151—C153—H15E | 109.5 | C251—C253—H25E | 109.5 |
H15D—C153—H15E | 109.5 | H25D—C253—H25E | 109.5 |
C151—C153—H15F | 109.5 | C251—C253—H25F | 109.5 |
H15D—C153—H15F | 109.5 | H25D—C253—H25F | 109.5 |
H15E—C153—H15F | 109.5 | H25E—C253—H25F | 109.5 |
C151—C154—H15G | 109.5 | C251—C254—H25G | 109.5 |
C151—C154—H15H | 109.5 | C251—C254—H25H | 109.5 |
H15G—C154—H15H | 109.5 | H25G—C254—H25H | 109.5 |
C151—C154—H15J | 109.5 | C251—C254—H25J | 109.5 |
H15G—C154—H15J | 109.5 | H25G—C254—H25J | 109.5 |
H15H—C154—H15J | 109.5 | H25H—C254—H25J | 109.5 |
C17—C16—C15 | 120.87 (18) | C27—C26—C25 | 120.74 (17) |
C17—C16—H16A | 119.6 | C27—C26—H26 | 119.6 |
C15—C16—H16A | 119.6 | C25—C26—H26 | 119.6 |
N17—C17—N17a | 118.06 (17) | N27—C27—N27a | 117.81 (17) |
N17—C17—C16 | 126.33 (18) | N27—C27—C26 | 126.57 (17) |
N17a—C17—C16 | 115.61 (17) | N27a—C27—C26 | 115.62 (16) |
C17—N17—H17a | 120.0 | C27—N27—H27a | 120.0 |
C17—N17—H17B | 120.0 | C27—N27—H27B | 120.0 |
H17a—N17—H17B | 120.0 | H27a—N27—H27B | 120.0 |
C17—N17a—N11 | 124.94 (15) | C27—N27a—N21 | 124.79 (15) |
C17—N17a—C13a | 122.26 (16) | C27—N27a—C23a | 122.37 (16) |
N11—N17a—C13a | 112.79 (15) | N21—N27a—C23a | 112.83 (15) |
N17a—N11—C12—C13 | 0.3 (2) | N27a—N21—C22—C23 | 0.2 (2) |
N17a—N11—C12—C121 | −179.40 (16) | N27a—N21—C22—C221 | −178.84 (17) |
N11—C12—C13—C13a | −0.5 (2) | N21—C22—C23—C23a | −0.7 (2) |
C121—C12—C13—C13a | 179.23 (19) | C221—C22—C23—C23a | 178.2 (2) |
C12—C13—C13a—N14 | −179.8 (2) | C22—C23—C23a—N24 | −177.2 (2) |
C12—C13—C13a—N17a | 0.4 (2) | C22—C23—C23a—N27a | 0.9 (2) |
C13—C13a—N14—C15 | −179.7 (2) | C23—C23a—N24—C25 | 179.9 (2) |
N17a—C13a—N14—C15 | 0.0 (3) | N27a—C23a—N24—C25 | 2.1 (3) |
C13a—N14—C15—C16 | −1.2 (3) | C23a—N24—C25—C26 | −1.9 (3) |
C13a—N14—C15—C151 | 178.99 (17) | C23a—N24—C25—C251 | 179.42 (16) |
N14—C15—C151—C153 | −172.90 (17) | N24—C25—C251—C253 | −169.65 (19) |
C16—C15—C151—C153 | 7.3 (3) | C26—C25—C251—C253 | 11.6 (3) |
N14—C15—C151—C154 | 67.4 (2) | N24—C25—C251—C254 | −47.9 (2) |
C16—C15—C151—C154 | −112.4 (2) | C26—C25—C251—C254 | 133.4 (2) |
N14—C15—C151—C152 | −52.0 (2) | N24—C25—C251—C252 | 70.2 (2) |
C16—C15—C151—C152 | 128.2 (2) | C26—C25—C251—C252 | −108.6 (2) |
N14—C15—C16—C17 | 1.2 (3) | N24—C25—C26—C27 | 0.8 (3) |
C151—C15—C16—C17 | −179.01 (18) | C251—C25—C26—C27 | 179.47 (17) |
C15—C16—C17—N17 | 179.56 (19) | C25—C26—C27—N27 | −179.74 (19) |
C15—C16—C17—N17a | 0.0 (3) | C25—C26—C27—N27a | 0.1 (3) |
N17—C17—N17a—N11 | 0.7 (3) | N27—C27—N27a—N21 | 1.3 (3) |
C16—C17—N17a—N11 | −179.79 (17) | C26—C27—N27a—N21 | −178.53 (16) |
N17—C17—N17a—C13a | 179.28 (17) | N27—C27—N27a—C23a | 179.97 (17) |
C16—C17—N17a—C13a | −1.2 (3) | C26—C27—N27a—C23a | 0.1 (3) |
C12—N11—N17a—C17 | 178.67 (17) | C22—N21—N27a—C27 | 179.17 (17) |
C12—N11—N17a—C13a | −0.1 (2) | C22—N21—N27a—C23a | 0.4 (2) |
N14—C13a—N17a—C17 | 1.2 (3) | N24—C23a—N27a—C27 | −1.3 (3) |
C13—C13a—N17a—C17 | −178.99 (17) | C23—C23a—N27a—C27 | −179.64 (17) |
N14—C13a—N17a—N11 | 179.96 (17) | N24—C23a—N27a—N21 | 177.56 (16) |
C13—C13a—N17a—N11 | −0.2 (2) | C23—C23a—N27a—N21 | −0.8 (2) |
D—H···A | D—H | H···A | D···A | D—H···A |
N17—H17A···N21 | 0.88 | 2.20 | 3.017 (3) | 155 |
N17—H17B···N24i | 0.88 | 2.20 | 3.054 (2) | 165 |
N27—H27A···N11 | 0.88 | 2.23 | 3.021 (3) | 150 |
N27—H27B···N14ii | 0.88 | 2.10 | 2.951 (2) | 162 |
Symmetry codes: (i) −x, −y+1, −z+2; (ii) −x+1, −y+1, −z+1. |
C8H11N5·H2O | F(000) = 416 |
Mr = 195.23 | Dx = 1.362 Mg m−3 |
Monoclinic, P21/c | Mo Kα radiation, λ = 0.71073 Å |
Hall symbol: -P 2ybc | Cell parameters from 2188 reflections |
a = 8.0970 (2) Å | θ = 3.4–27.5° |
b = 9.8881 (3) Å | µ = 0.10 mm−1 |
c = 11.9661 (3) Å | T = 120 K |
β = 96.230 (5)° | Plate, colourless |
V = 952.40 (5) Å3 | 0.50 × 0.36 × 0.10 mm |
Z = 4 |
Bruker Nonius KappaCCD area-detector diffractometer | 2188 independent reflections |
Radiation source: Bruker-Nonius FR591 rotating anode | 1631 reflections with I > 2σ(I) |
Graphite monochromator | Rint = 0.034 |
Detector resolution: 9.091 pixels mm-1 | θmax = 27.5°, θmin = 3.4° |
ϕ and ω scans | h = −10→10 |
Absorption correction: multi-scan (SADABS; Sheldrick, 2003) | k = −12→12 |
Tmin = 0.938, Tmax = 0.990 | l = −15→13 |
12664 measured reflections |
Refinement on F2 | Secondary atom site location: difference Fourier map |
Least-squares matrix: full | Hydrogen site location: inferred from neighbouring sites |
R[F2 > 2σ(F2)] = 0.048 | H-atom parameters constrained |
wR(F2) = 0.151 | w = 1/[σ2(Fo2) + (0.0821P)2 + 0.2832P] where P = (Fo2 + 2Fc2)/3 |
S = 1.06 | (Δ/σ)max < 0.001 |
2188 reflections | Δρmax = 0.26 e Å−3 |
129 parameters | Δρmin = −0.20 e Å−3 |
0 restraints | Extinction correction: SHELXL97 (Sheldrick, 1997), Fc*=kFc[1+0.001xFc2λ3/sin(2θ)]-1/4 |
Primary atom site location: structure-invariant direct methods | Extinction coefficient: 0.034 (7) |
C8H11N5·H2O | V = 952.40 (5) Å3 |
Mr = 195.23 | Z = 4 |
Monoclinic, P21/c | Mo Kα radiation |
a = 8.0970 (2) Å | µ = 0.10 mm−1 |
b = 9.8881 (3) Å | T = 120 K |
c = 11.9661 (3) Å | 0.50 × 0.36 × 0.10 mm |
β = 96.230 (5)° |
Bruker Nonius KappaCCD area-detector diffractometer | 2188 independent reflections |
Absorption correction: multi-scan (SADABS; Sheldrick, 2003) | 1631 reflections with I > 2σ(I) |
Tmin = 0.938, Tmax = 0.990 | Rint = 0.034 |
12664 measured reflections |
R[F2 > 2σ(F2)] = 0.048 | 0 restraints |
wR(F2) = 0.151 | H-atom parameters constrained |
S = 1.06 | Δρmax = 0.26 e Å−3 |
2188 reflections | Δρmin = −0.20 e Å−3 |
129 parameters |
x | y | z | Uiso*/Ueq | Occ. (<1) | |
N1 | 0.67420 (16) | 0.64475 (14) | 0.52283 (11) | 0.0341 (4) | |
C2 | 0.7499 (2) | 0.74788 (16) | 0.47362 (14) | 0.0342 (4) | |
C21 | 0.6493 (3) | 0.8480 (2) | 0.40191 (17) | 0.0500 (5) | |
C3 | 0.9216 (2) | 0.74919 (16) | 0.50283 (14) | 0.0323 (4) | |
N3 | 1.0371 (2) | 0.84245 (16) | 0.46815 (14) | 0.0461 (4) | |
C3a | 0.95449 (19) | 0.64217 (16) | 0.57677 (13) | 0.0287 (4) | |
N4 | 1.09631 (16) | 0.59980 (14) | 0.63648 (11) | 0.0319 (3) | |
C5 | 1.0820 (2) | 0.49713 (17) | 0.70698 (13) | 0.0321 (4) | |
C51 | 1.2371 (2) | 0.4522 (2) | 0.77640 (16) | 0.0455 (5) | |
C6 | 0.9308 (2) | 0.43295 (17) | 0.71830 (13) | 0.0330 (4) | |
C7 | 0.7865 (2) | 0.47443 (16) | 0.65583 (13) | 0.0305 (4) | |
N7 | 0.63538 (18) | 0.42136 (16) | 0.65922 (13) | 0.0432 (4) | |
N7a | 0.80186 (16) | 0.58154 (13) | 0.58556 (11) | 0.0295 (3) | |
O1 | 0.61519 (17) | 0.25918 (14) | 0.86251 (13) | 0.0529 (4) | |
H21B | 0.5345 | 0.8219 | 0.3951 | 0.075* | |
H21A | 0.6874 | 0.8506 | 0.3287 | 0.075* | |
H21C | 0.6615 | 0.9359 | 0.4358 | 0.075* | |
H3A | 1.1368 | 0.8194 | 0.4931 | 0.055* | |
H3B | 1.0208 | 0.8583 | 0.3972 | 0.055* | 0.50 |
H3C | 1.0175 | 0.9271 | 0.4768 | 0.055* | 0.50 |
H51A | 1.3288 | 0.5067 | 0.7586 | 0.068* | |
H52B | 1.2586 | 0.3591 | 0.7604 | 0.068* | |
H52C | 1.2235 | 0.4619 | 0.8547 | 0.068* | |
H6 | 0.9275 | 0.3615 | 0.7685 | 0.040* | |
H7A | 0.6268 | 0.3597 | 0.7090 | 0.052* | |
H7B | 0.5538 | 0.4412 | 0.6098 | 0.052* | |
H1A | 0.5350 | 0.2136 | 0.8931 | 0.079* | |
H1B | 0.6963 | 0.1966 | 0.8657 | 0.079* |
U11 | U22 | U33 | U12 | U13 | U23 | |
N1 | 0.0309 (7) | 0.0360 (8) | 0.0344 (7) | 0.0007 (6) | −0.0015 (5) | 0.0043 (6) |
C2 | 0.0384 (9) | 0.0316 (9) | 0.0321 (8) | −0.0005 (7) | 0.0018 (7) | 0.0005 (7) |
C21 | 0.0533 (12) | 0.0417 (11) | 0.0522 (11) | −0.0002 (9) | −0.0075 (9) | 0.0129 (9) |
C3 | 0.0375 (9) | 0.0282 (8) | 0.0317 (8) | −0.0043 (6) | 0.0059 (6) | 0.0003 (6) |
N3 | 0.0451 (9) | 0.0396 (9) | 0.0539 (10) | −0.0092 (7) | 0.0070 (7) | 0.0118 (7) |
C3a | 0.0280 (8) | 0.0283 (8) | 0.0302 (8) | −0.0032 (6) | 0.0060 (6) | −0.0038 (6) |
N4 | 0.0284 (7) | 0.0336 (7) | 0.0339 (7) | −0.0021 (6) | 0.0047 (5) | −0.0016 (6) |
C5 | 0.0322 (8) | 0.0343 (9) | 0.0301 (8) | 0.0038 (7) | 0.0043 (6) | −0.0027 (7) |
C51 | 0.0318 (9) | 0.0570 (12) | 0.0470 (10) | 0.0056 (8) | 0.0017 (7) | 0.0063 (9) |
C6 | 0.0341 (9) | 0.0333 (9) | 0.0318 (8) | 0.0005 (7) | 0.0049 (6) | 0.0055 (6) |
C7 | 0.0317 (8) | 0.0310 (8) | 0.0293 (8) | −0.0026 (6) | 0.0055 (6) | −0.0003 (6) |
N7 | 0.0328 (8) | 0.0502 (9) | 0.0452 (9) | −0.0118 (7) | −0.0016 (6) | 0.0159 (7) |
N7a | 0.0280 (7) | 0.0303 (7) | 0.0299 (7) | −0.0014 (5) | 0.0020 (5) | 0.0033 (5) |
O1 | 0.0400 (7) | 0.0518 (9) | 0.0689 (9) | 0.0086 (6) | 0.0143 (7) | 0.0168 (7) |
N1—C2 | 1.357 (2) | N4—C5 | 1.333 (2) |
N1—N7a | 1.3616 (18) | C5—C6 | 1.399 (2) |
C2—C3 | 1.397 (3) | C5—C51 | 1.496 (2) |
C2—C21 | 1.492 (2) | C51—H51A | 0.96 |
C21—H21B | 0.96 | C51—H52B | 0.96 |
C21—H21A | 0.96 | C51—H52C | 0.96 |
C21—H21C | 0.96 | C6—C7 | 1.379 (2) |
C3—C3a | 1.387 (2) | C6—H6 | 0.93 |
C3—N3 | 1.408 (2) | C7—N7 | 1.336 (2) |
N3—H3A | 0.86 | C7—N7a | 1.366 (2) |
N3—H3B | 0.86 | N7—H7A | 0.866 |
N3—H3C | 0.86 | N7—H7B | 0.86 |
C3a—N4 | 1.351 (2) | O1—H1A | 0.90 |
C3a—N7a | 1.388 (2) | O1—H1B | 0.90 |
C2—N1—N7a | 103.45 (12) | N4—C5—C6 | 122.96 (15) |
N1—C2—C3 | 112.51 (14) | N4—C5—C51 | 116.86 (15) |
N1—C2—C21 | 120.26 (15) | C6—C5—C51 | 120.18 (15) |
C3—C2—C21 | 127.16 (16) | C5—C51—H51A | 109.5 |
C2—C21—H21B | 109.5 | C5—C51—H52B | 109.5 |
C2—C21—H21A | 109.5 | H51A—C51—H52B | 109.5 |
H21B—C21—H21A | 109.5 | C5—C51—H52C | 109.5 |
C2—C21—H21C | 109.5 | H51A—C51—H52C | 109.5 |
H21B—C21—H21C | 109.5 | H52B—C51—H52C | 109.5 |
H21A—C21—H21C | 109.5 | C7—C6—C5 | 120.77 (15) |
C3a—C3—C2 | 105.63 (14) | C7—C6—H6 | 119.6 |
C3a—C3—N3 | 126.91 (16) | C5—C6—H6 | 119.6 |
C2—C3—N3 | 127.42 (15) | N7—C7—N7a | 117.92 (15) |
C3—N3—H3A | 110.6 | N7—C7—C6 | 126.26 (15) |
C3—N3—H3B | 112.0 | N7a—C7—C6 | 115.82 (14) |
H3A—N3—H3B | 115.4 | C7—N7—H7A | 116.2 |
C3—N3—H3C | 117.7 | C7—N7—H7B | 121.8 |
H3A—N3—H3C | 113.3 | H7A—N7—H7B | 121.6 |
H3B—N3—H3C | 86.0 | N1—N7a—C7 | 125.48 (13) |
N4—C3a—C3 | 131.84 (15) | N1—N7a—C3a | 112.89 (13) |
N4—C3a—N7a | 122.59 (14) | C7—N7a—C3a | 121.53 (14) |
C3—C3a—N7a | 105.50 (14) | H1A—O1—H1B | 101.2 |
C5—N4—C3a | 116.31 (13) | ||
N7a—N1—C2—C3 | 0.89 (18) | N4—C5—C6—C7 | −0.2 (3) |
N7a—N1—C2—C21 | −176.35 (15) | C51—C5—C6—C7 | 179.20 (16) |
N1—C2—C3—C3a | −1.40 (19) | C5—C6—C7—N7 | 179.98 (15) |
C21—C2—C3—C3a | 175.61 (17) | C5—C6—C7—N7a | −1.1 (2) |
N1—C2—C3—N3 | −179.21 (16) | C2—N1—N7a—C7 | 176.40 (14) |
C21—C2—C3—N3 | −2.2 (3) | C2—N1—N7a—C3a | −0.04 (17) |
C2—C3—C3a—N4 | −175.77 (16) | N7—C7—N7a—N1 | 4.1 (2) |
N3—C3—C3a—N4 | 2.1 (3) | C6—C7—N7a—N1 | −174.94 (14) |
C2—C3—C3a—N7a | 1.27 (17) | N7—C7—N7a—C3a | −179.76 (15) |
N3—C3—C3a—N7a | 179.09 (15) | C6—C7—N7a—C3a | 1.2 (2) |
C3—C3a—N4—C5 | 175.31 (16) | N4—C3a—N7a—N1 | 176.58 (13) |
N7a—C3a—N4—C5 | −1.3 (2) | C3—C3a—N7a—N1 | −0.81 (18) |
C3a—N4—C5—C6 | 1.4 (2) | N4—C3a—N7a—C7 | 0.0 (2) |
C3a—N4—C5—C51 | −178.03 (14) | C3—C3a—N7a—C7 | −177.41 (13) |
D—H···A | D—H | H···A | D···A | D—H···A |
O1—H1A···N1i | 0.90 | 2.17 | 3.059 (2) | 168 |
O1—H1B···N4ii | 0.90 | 1.94 | 2.817 (2) | 166 |
N3—H3A···O1iii | 0.86 | 2.57 | 3.386 (2) | 158 |
N3—H3C···N3iv | 0.86 | 2.43 | 3.279 (2) | 171 |
N7—H7A···O1 | 0.86 | 2.10 | 2.933 (2) | 163 |
N7—H7B···N1v | 0.86 | 2.45 | 3.205 (2) | 147 |
Symmetry codes: (i) −x+1, y−1/2, −z+3/2; (ii) −x+2, y−1/2, −z+3/2; (iii) −x+2, y+1/2, −z+3/2; (iv) −x+2, −y+2, −z+1; (v) −x+1, −y+1, −z+1. |
Experimental details
(I) | (II) | |
Crystal data | ||
Chemical formula | C11H16N4 | C8H11N5·H2O |
Mr | 204.28 | 195.23 |
Crystal system, space group | Triclinic, P1 | Monoclinic, P21/c |
Temperature (K) | 120 | 120 |
a, b, c (Å) | 9.8216 (5), 11.3582 (7), 12.2783 (8) | 8.0970 (2), 9.8881 (3), 11.9661 (3) |
α, β, γ (°) | 70.429 (3), 69.895 (4), 66.454 (4) | 90, 96.230 (5), 90 |
V (Å3) | 1147.66 (12) | 952.40 (5) |
Z | 4 | 4 |
Radiation type | Mo Kα | Mo Kα |
µ (mm−1) | 0.08 | 0.10 |
Crystal size (mm) | 0.15 × 0.10 × 0.04 | 0.50 × 0.36 × 0.10 |
Data collection | ||
Diffractometer | Bruker Nonius KappaCCD area-detector diffractometer | Bruker Nonius KappaCCD area-detector diffractometer |
Absorption correction | Multi-scan (SADABS; Sheldrick, 2003) | Multi-scan (SADABS; Sheldrick, 2003) |
Tmin, Tmax | 0.982, 0.997 | 0.938, 0.990 |
No. of measured, independent and observed [I > 2σ(I)] reflections | 22882, 4863, 2931 | 12664, 2188, 1631 |
Rint | 0.066 | 0.034 |
(sin θ/λ)max (Å−1) | 0.634 | 0.650 |
Refinement | ||
R[F2 > 2σ(F2)], wR(F2), S | 0.056, 0.150, 1.04 | 0.048, 0.151, 1.06 |
No. of reflections | 4863 | 2188 |
No. of parameters | 280 | 129 |
H-atom treatment | H-atom parameters constrained | H-atom parameters constrained |
Δρmax, Δρmin (e Å−3) | 0.22, −0.23 | 0.26, −0.20 |
Computer programs: COLLECT (Nonius, 1999), DENZO (Otwinowski & Minor, 1997) and COLLECT, DENZO and COLLECT, SIR2004 (Burla et al., 2005), OSCAIL (McArdle, 2003) and SHELXL97 (Sheldrick, 1997), PLATON (Spek, 2003), SHELXL97 and PRPKAPPA (Ferguson, 1999).
D—H···A | D—H | H···A | D···A | D—H···A |
N17—H17A···N21 | 0.88 | 2.20 | 3.017 (3) | 155 |
N17—H17B···N24i | 0.88 | 2.20 | 3.054 (2) | 165 |
N27—H27A···N11 | 0.88 | 2.23 | 3.021 (3) | 150 |
N27—H27B···N14ii | 0.88 | 2.10 | 2.951 (2) | 162 |
Symmetry codes: (i) −x, −y+1, −z+2; (ii) −x+1, −y+1, −z+1. |
D—H···A | D—H | H···A | D···A | D—H···A |
O1—H1A···N1i | 0.90 | 2.17 | 3.059 (2) | 168 |
O1—H1B···N4ii | 0.90 | 1.94 | 2.817 (2) | 166 |
N3—H3A···O1iii | 0.86 | 2.57 | 3.386 (2) | 158 |
N3—H3C···N3iv | 0.86 | 2.43 | 3.279 (2) | 171 |
N7—H7A···O1 | 0.86 | 2.10 | 2.933 (2) | 163 |
N7—H7B···N1v | 0.86 | 2.45 | 3.205 (2) | 147 |
Symmetry codes: (i) −x+1, y−1/2, −z+3/2; (ii) −x+2, y−1/2, −z+3/2; (iii) −x+2, y+1/2, −z+3/2; (iv) −x+2, −y+2, −z+1; (v) −x+1, −y+1, −z+1. |
Acknowledgements
The X-ray data were collected at the EPSRC National X-ray Crystallography Service, University of Southampton, England. JC and JMT thank the Consejería de Innovación, Ciencia y Empresa (Junta de Andalucía, Spain), and the Universidad de Jaén for financial support. JMT also thanks the Universidad de Jaén for a research scholarship supporting a short stay at the EPSRC X-ray Crystallographic Service, University of Southampton. JP and JQ thank COLCIENCIAS and UNIVALLE (Universidad del Valle, Colombia) for financial support.
References
Bernstein, J., Davis, R. E., Shimoni, L. & Chang, N.-L. (1995). Angew. Chem. Int. Ed. Engl. 34, 1555–1573. CrossRef CAS Web of Science Google Scholar
Burla, M. C., Caliandro, R., Camalli, M., Carrozzini, B., Cascarano, G. L., De Caro, L., Giacovazzo, C., Polidori, G. & Spagna, R. (2005). J. Appl. Cryst. 38, 381–388. Web of Science CrossRef CAS IUCr Journals Google Scholar
Ferguson, G. (1999). PRPKAPPA. University of Guelph, Canada. Google Scholar
McArdle, P. (2003). OSCAIL for Windows. Version 10. Crystallography Centre, Chemistry Department, NUI Galway, Ireland. Google Scholar
Mornon, J.-P., Delettré, J. & Bally, R. (1975). Acta Cryst. B31, 2119–2121. CSD CrossRef CAS IUCr Journals Web of Science Google Scholar
Nonius (1999). COLLECT. Nonius BV, Delft, The Netherlands. Google Scholar
Otwinowski, Z. & Minor, W. (1997). Methods in Enzymology, Vol. 276, Macromolecular Crystallography, Part A, edited by C. W. Carter Jr & R. M. Sweet, pp. 307–326. New York: Academic Press. Google Scholar
Portilla, J., Quiroga, J., Cobo, J., Low, J. N. & Glidewell, C. (2006). Acta Cryst. C62, o186–o189. CSD CrossRef CAS IUCr Journals Google Scholar
Sheldrick, G. M. (1997). SHELXS97 and SHELXL97. University of Göttingen, Germany. Google Scholar
Sheldrick, G. M. (2003). SADABS. Version 2.10. University of Göttingen, Germany. Google Scholar
Spek, A. L. (2003). J. Appl. Cryst. 36, 7–13. Web of Science CrossRef CAS IUCr Journals Google Scholar
© International Union of Crystallography. Prior permission is not required to reproduce short quotations, tables and figures from this article, provided the original authors and source are cited. For more information, click here.
We report here the structures of 7-amino-5-tert-butyl-2-methylpyrazolo[1,5-a]pyrimidine, (I) (Fig. 1), and 3,7-diamino-2,5-dimethylpyrazolo[1,5-a]pyrimidine monohydrate, (II) (Fig. 2), which we compare with the structure of 7-amino-2,5-dimethylpyrazolo[1,5-a]pyrimidine hemihydrate, (III). The structure of (III) was determined many years ago using diffraction data collected at ambient temperature (Mornon et al., 1975), and it was recently redetermined using diffraction data collected at 120 K (Portilla et al., 2006). The heterocyclic system in (I) differs from that in (III) only in the replacement of the methyl substituent on the pyrimidine ring by a tert-butyl substituent, while the heterocyclic system in (II) differs from that in (III) only by the incorporation of a second amino group, and this provides an opportunity to observe the effects of simple changes of substituent upon the supramolecular aggregation. Compound (I) was prepared in a similar fashion to compound (III) (Portilla et al., 2006), here using a solvent-free cyclocondensation between 5-amino-3-methyl-1H-pyrazole and 4,4-dimethyl-3-oxopentanenitrile induced by microwave irradiation. Compound (II) was prepared by nitrosation of (III) to yield (IV), followed by palladium-catalysed reduction with hydrazine.
The pattern of the bond lengths in both (I) and (II) closely mimics the pattern found for (III), and it is not necessary to discuss this in detail again. Following the earlier discussion (Portilla et al., 2006), it can be concluded that in all three of these compounds there is a considerable degree of aromatic 10-π-electron delocalization around the periphery of the heterocyclic components.
Compound (I) crystallizes with Z' = 2 and within the selected asymmetric unit (Fig. 1) the two independent molecules are linked by two N—H···N hydrogen bonds (Table 1), forming an R22(10) (Bernstein et al., 1995) dimer. Dimers of this type are then linked by two further N—H···N hydrogen bonds to form a complex chain of rings. Atoms N17 and N27 in the dimeric unit at (x, y, z) act as hydrogen-bond donors via atoms H17B and H27B, respectively, to the ring atoms N24 at (−x, 1 − y, 2 − z) and N14 at (1 − x, 1 − y, 1 − z), so generating by inversion two distinct R44(14) motifs centred at (0, 1/2, 1) and (1/2, 1/2, 1/2), respectively. Propagation by inversion of these two interactions then generates a chain of edge-fused rings running parallel to the [101] direction, with R44(14) rings containing pairs of N17 atoms centred at (n, 1/2, 1 − n) (n = zero or integer), R44(14) rings containing pairs of N27 atoms centred at (1/2 + n, 1/2, 1/2 − n) (n = zero or integer) and R22(10) rings occupying the intermediate locations in the chain (Fig. 3).
Within the selected asymmetric unit of compound (II) (Fig. 2), the components are linked by an N—H···O hydrogen bond (Table 2). The amino group bonded to atom C3 exhibits orientational disorder, and this was modelled in terms of one H-atom site with full occupancy and two H-atom sites each with 0.5 occupancy. While such disorder undoubtedly complicates the analysis and the full description of the overall supramolecular aggregation, it is possible in this case to demonstrate the occurrence of a three-dimensional hydrogen-bonded structure without reference to this disordered amino group. It may be noted here that the only two possible hydrogen-bond acceptors adjacent to atom N3 in the molecule at (x, y, z), atoms O1 and N3 in the molecules are (2 − x, 1/2 + y, 3/2 − z) and (2 − x, 2 − y, 1 − z), respectively, are both distant from the reference atom N3 by more than 3.2 Å (Table 2), and the corresponding D···A and H···A distances are probably too long for significant hydrogen bonding to occur. Hence, without effective tethering via hydrogen bonds, the amino group based on N3 is more or less free to rotate about the N3—C3 bond and this possibly accounts for the observed disorder. Therefore, we analyse the supramolecular aggregation of compound (II) without reference to the amino group based on N3.
Two O—H···N hydrogen bonds link the bimolecular aggregates into a sheet, and adjacent sheets are linked by paired N—H···N hydrogen bonds to form a single three-dimensional framework structure. The water molecule at (x, y, z) acts as hydrogen-bond donor, via atoms H1A and H1B, to atoms N1 at (1 − x, −1/2 + y, 3/2 − z) and N4 at (2 − x, −1/2 + y, 3/2 − z), so forming a sheet parallel to (001) built from a single type of R66(22) ring (Fig. 4). Two sheets of this type pass through each unit cell, generated by the 21 screw axes at y = 1/4 and y = 3/4, and lying in the domains −0.04 < z < 0.54 and 0.46 < z < 1.04, respectively. The (001) sheets are linked by a centrosymmetric R22(10) motif, in which paired N—H···N hydrogen bonds link the heterocyclic molecules at (x, y, z) and (1 − x, 1 − y, 1 − z) (Fig. 5). Propagation of this motif links each (001) sheet to the two adjacent sheets, so forming a continuous framework.
In compound (III), where the water molecules lie across twofold rotation axes in space group C2, the molecular components are linked by a combination of O—H···N, N—H···N and N—H···O hydrogen bonds into a three-dimensional framework structure (Portilla et al., 2006). Within that structure, it is possible to identify a centrosymmetric R22(10) motif, precisely similar to that found here in compound (II) (Fig. 5), but there are no further similarities between the supramolecular structures of (I), (II) and (III).