

Supporting information
![]() | Crystallographic Information File (CIF) https://doi.org/10.1107/S0108270113031521/wq3050sup1.cif |
![]() | Structure factor file (CIF format) https://doi.org/10.1107/S0108270113031521/wq3050Isup2.hkl |
CCDC reference: 972666
The common synthetic routes employed in the synthesis of dihydropyrimidinone derivatives generally involve multi-step transformations that are essentially based on the Biginelli condensation methodology (Steele et al., 1998). 3,4-Dihydropyrimidinones have drawn widespread attention due to their broad pharmaceutical applications. A variety of dihydropyrimidinone derivatives have been screened for antihypertension (Atwal, 1990), antibacterial (Matsuda & Hirao, 1965) and calcium-channel-blocking activities (Manjula et al., 2004). The title compound, 2,2'-disulfanylidene-5,5'-biimidazolidinylidene-4,4'-dione–dimethylformamide–water (3/2/4), (I), was obtained as the reaction product in the attempted synthesis of 5-ethoxycarbonyl-6-methyl-2-sulfanylidene-1,2,3,4-tetrahydropyrimidine-4-carboxylic acid and the structure is reported herein.
The title compound, (I), was prepared as an unexpected product. Glyoxylic acid (50% in water, 8 mmol), ethyl acetoacetate (8 mmol), thiourea (12 mmol) and CaF2 (4 mmol) were mixed in a 50 ml flask. After the mixture had been stirred and refluxed at 373 K for 8 h, the reaction mixture was allowed to stand at room temperature and the crude product formed was filtered, washed with ethanol followed by water and dried. Further purification was done by recrystallization from dimethylformamide. Recrystallization of the crude product from DMF resulted in brown plate-like single crystals of (I) suitable for X-ray diffraction analysis after six weeks.
Crystal data, data collection and structure refinement details are summarized in Table 1. H atoms were placed in calculated positions (C—H = 0.93 and 0.96 Å for Csp2 and Csp3 atoms, respectively), assigned fixed Uiso values [Uiso(H) = 1.2Ueq(Csp2) and 1.5Ueq(Csp3)] and allowed to ride. H atoms attached to O and N atoms were found in the difference electron-density map with O—H and N—H bond lengths in the range 0.78–0.86 Å. Water atoms H5C and H6C are disordered over two positions, with occupancies of 0.53 (4) and 0.47 (4), and all disordered atoms were subjected to a rigid-bond restraint.
The title compound, (I), crystallizes in the space group P1, with one and a half molecules of 2,2'-disulfanylidene-5,5'-biimidazolidinylidene-4,4'-dione, one dimethylformamide molecule and two water molecules in the asymmetric unit. The half molecule sits on a crystallographic inversion center situated at the mid-point of C9—C9(-x+2, -y+2, -z+1) bond (Fig. 1). The non-H atoms in the main organic component of (I) are coplanar, with maximum deviations from the least-squares planes of 0.0030 and 0.0109 Å, respectively, for the two independent molecules. The average C—S bond length of 1.644 (2) Å agrees well with similar bonds in related compounds, being intermediate between the value of 1.82 Å for a C—S single bond and 1.56 Å for a C═S double bond (Sutton, 1965). The corresponding average C—-N bond length of 1.373 (3) Å is indicative of some double-bond character, suggesting extensive electron delocalization over the whole 2,2'-disulfanylidene-5,5'-biimidazolidinylidene-4,4'-dione molecule.
The 2,2'-disulfanylidene-5,5'-biimidazolidinylidene-4,4'-dione molecules aggregate into parallel layered ribbons of the type ···A···A···B···A···A···B stacked along the b axis (Fig. 2). The spacing between the layers A···A and A···B is ca 3.28 Å. In the A layer, these molecules associate through N5—H5A···S2vii and N5vii—H5Avii···S2 hydrogen bonds (see Table 2 for geometric details and symmetry codes), forming a centrosymmetric cyclic motif [graph set R22(8); Bernstein et al., 1995]. Atoms N5 and N5vii act as donors to atoms O3i and O3ii through intramolecular N5—H5A···O3i and N5vii—H5Avii···O3ii [check codes against Table 2] hydrogen-bond interactions. Atom N6 acts as a donor to water molecule O6viii through an intermolecular N6—H6A···O6viii hydrogen bond to afford a two-dimensional network. In the B layer, the dimeric R22(8) association is formed through N1—H1A···S3iii and N4ii—H4Aii···S1 [check] hydrogen bonds, generating the ribbon structure, but through translation-related molecules. Atoms N1 and N4 act as donors to atoms O2 and O1 through intramolecular N1—H1A···O2 and N4—H4A···O1 hydrogen bonds. Atoms N2 and N3 act as donors to atoms O4iv and O5v through N2—H2A···O4iv and N3—H3A···O5v hydrogen bonds to afford a second two-dimensional network.
In the crystal packing of (I), as indicated previously, there are ribbon structures or tapes which extend along the a axis (see Fig. 3) and which are linked peripherally by the water and DMF molecules into an overall three-dimensional structure. Although the interlayer spacing is ca 3.28 Å, PLATON (Spek, 2009) indicates that there is no ring centroid separation that is less than 4.4020 (17) Å, which is beyond the extreme value for π–π interactions (ca 3.9 Å) because of the ring offsets in the layers (Fig. 3).
Of recent interest is the presence of water clusters of the type (H2O)n in structures and their possible role in the anomalous behaviour of bulk water in the stabilization and function of biomolecules and in the design of new materials (Atwood et al., 2001; Lu et al., 2005; Luo et al., 2012). In the crystal structure of (I), there are two crystallographically unique water molecules in the asymmetric unit (O5 and O6) which associate through hydrogen bonds to form a cyclic centrosymmetric (H2O)4 tetramer unit [graph set R44(8)] (Bernstein et al., 1995). Atoms H5C and H6C of the water molecules which hold this tetramer together are, not surprisingly, disordered over two positions with occupancies of 0.53 (4) and 0.47 (4) (Fig. 4 and Table 2). Within this cluster, the four O atoms are coplanar, with the remaining two H atoms being 0.20 and 0.12 Å above plane of the ring. Such an arrangement is described as an irregular uudd-type water tetramer (u = up and d = down; Chen et al., 2013; Gregory & Clary, 1996; Liu & Wu, 2013; Long et al., 2004). The two water molecules (O5 and O6) are involved in the formation of a number of hydrogen bonds in addition to the water–water interactions which hold the tetramer together. These include O6 which acts as a hydrogen-bond donor to DMF atom O4ix and O5 which acts as a hydrogen-bond donor to imidazolidinone atom O2 (see Table 2 for geometric details and symmetry codes). The water molecules of the tetramer also act as hydrogen-bond acceptors; O5v accepts a hydrogen bond from imidazolidinone atom N3, while O6viii accepts a hydrogen bond from imidazolidinone atom N6. Thus, the water tetramer is involved in eight intermolecular hydrogen bonds and clearly plays a pivotal role in the stabilization of the crystal packing in this complex. Each of dimethylformamide molecules acts as a double acceptor, viz to a water molecules in an O6—H6B···O4ix hydrogen bond and to an imidazolidinone molecule in an N2—H2A···O4iv. Thus, the (H2O)4(DMF)2 moieties are anchored by abundant hydrogen bonds to the organic layered ribbon structures in (I) to construct the three-dimensional supramolecular network (Fig. 5). The majority of these hydrogen bonds are of a two-centre-type and the minority of a three-centre-type of N1—H1A···O2/S3iii, N4—H4A···O1/S1vi and N5—H5A···O3i/S2vii. These chains are linked across the c axis through water O5—H5B···O2 and the N4—H4A···O5iv [not in Table 2] links, as well as through an N2—H2A···O5 [not in Table 2] link to a DMF O-atom acceptor.
In conclusion, the hydrated title compound has been crystallized and structurally characterized, showing abundant two-centre and three-centre hydrogen-bonding interactions in the solid state.
Data collection: CrystalClear (Rigaku, 2005); cell refinement: CrystalClear (Rigaku, 2005); data reduction: CrystalClear (Rigaku, 2005); program(s) used to solve structure: SHELXS97 (Sheldrick, 2008); program(s) used to refine structure: SHELXL97 (Sheldrick, 2008); molecular graphics: SHELXTL (Sheldrick, 2008); software used to prepare material for publication: SHELXTL (Sheldrick, 2008).
3C6H4N4O2S2·2C3H7NO·4H2O | Z = 1 |
Mr = 903.01 | F(000) = 468 |
Triclinic, P1 | Dx = 1.574 Mg m−3 |
Hall symbol: -P 1 | Mo Kα radiation, λ = 0.71073 Å |
a = 8.0655 (16) Å | Cell parameters from 8524 reflections |
b = 10.391 (2) Å | θ = 3.2–27.5° |
c = 12.735 (3) Å | µ = 0.44 mm−1 |
α = 105.60 (1)° | T = 298 K |
β = 103.47 (1)° | Block, brown |
γ = 102.81 (2)° | 0.24 × 0.22 × 0.20 mm |
V = 952.5 (3) Å3 |
Rigaku Mercury2 (2x2 bin mode) diffractometer | 4359 independent reflections |
Radiation source: fine-focus sealed tube | 3164 reflections with I > 2σ(I) |
Graphite monochromator | Rint = 0.027 |
Detector resolution: 13.6612 pixels mm-1 | θmax = 27.5°, θmin = 3.2° |
CCD_Profile_fitting scans | h = −10→10 |
Absorption correction: multi-scan (CrystalClear; Rigaku, 2005) | k = −13→13 |
Tmin = 0.903, Tmax = 0.918 | l = −16→16 |
9925 measured reflections |
Refinement on F2 | Primary atom site location: structure-invariant direct methods |
Least-squares matrix: full | Secondary atom site location: difference Fourier map |
R[F2 > 2σ(F2)] = 0.042 | Hydrogen site location: inferred from neighbouring sites |
wR(F2) = 0.110 | H atoms treated by a mixture of independent and constrained refinement |
S = 1.03 | w = 1/[σ2(Fo2) + (0.0464P)2 + 0.4062P] where P = (Fo2 + 2Fc2)/3 |
4359 reflections | (Δ/σ)max = 0.001 |
298 parameters | Δρmax = 0.41 e Å−3 |
9 restraints | Δρmin = −0.21 e Å−3 |
3C6H4N4O2S2·2C3H7NO·4H2O | γ = 102.81 (2)° |
Mr = 903.01 | V = 952.5 (3) Å3 |
Triclinic, P1 | Z = 1 |
a = 8.0655 (16) Å | Mo Kα radiation |
b = 10.391 (2) Å | µ = 0.44 mm−1 |
c = 12.735 (3) Å | T = 298 K |
α = 105.60 (1)° | 0.24 × 0.22 × 0.20 mm |
β = 103.47 (1)° |
Rigaku Mercury2 (2x2 bin mode) diffractometer | 4359 independent reflections |
Absorption correction: multi-scan (CrystalClear; Rigaku, 2005) | 3164 reflections with I > 2σ(I) |
Tmin = 0.903, Tmax = 0.918 | Rint = 0.027 |
9925 measured reflections |
R[F2 > 2σ(F2)] = 0.042 | 9 restraints |
wR(F2) = 0.110 | H atoms treated by a mixture of independent and constrained refinement |
S = 1.03 | Δρmax = 0.41 e Å−3 |
4359 reflections | Δρmin = −0.21 e Å−3 |
298 parameters |
Geometry. All e.s.d.'s (except the e.s.d. in the dihedral angle between two l.s. planes) are estimated using the full covariance matrix. The cell e.s.d.'s are taken into account individually in the estimation of e.s.d.'s in distances, angles and torsion angles; correlations between e.s.d.'s in cell parameters are only used when they are defined by crystal symmetry. An approximate (isotropic) treatment of cell e.s.d.'s is used for estimating e.s.d.'s 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 > σ(F2) is used only for calculating R-factors(gt) etc. and is not relevant to the choice of reflections for refinement. 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 | Occ. (<1) | |
C1 | 0.4184 (3) | 0.2934 (2) | 0.41471 (16) | 0.0289 (4) | |
C2 | 0.6914 (3) | 0.2880 (2) | 0.39488 (16) | 0.0310 (4) | |
C3 | 0.7072 (3) | 0.3421 (2) | 0.51797 (16) | 0.0289 (4) | |
C4 | 0.8596 (3) | 0.3828 (2) | 0.60573 (16) | 0.0294 (4) | |
C5 | 0.8822 (3) | 0.4365 (2) | 0.72936 (16) | 0.0312 (4) | |
C6 | 1.1511 (3) | 0.4299 (2) | 0.70438 (17) | 0.0302 (4) | |
C7 | 0.6343 (3) | 0.9291 (2) | 0.35311 (17) | 0.0306 (4) | |
C8 | 0.9043 (3) | 0.9142 (2) | 0.33321 (17) | 0.0324 (5) | |
C9 | 0.9241 (3) | 0.9789 (2) | 0.45587 (16) | 0.0305 (4) | |
C10 | 0.7671 (3) | −0.0194 (3) | 0.90246 (18) | 0.0392 (5) | |
H10A | 0.8067 | −0.0208 | 0.8393 | 0.047* | |
C11 | 0.9646 (4) | 0.2181 (3) | 0.9900 (2) | 0.0567 (7) | |
H11A | 0.9924 | 0.1952 | 0.9193 | 0.085* | |
H11B | 1.0719 | 0.2457 | 1.0533 | 0.085* | |
H11C | 0.9136 | 0.2940 | 0.9962 | 0.085* | |
C12 | 0.7797 (4) | 0.1109 (3) | 1.0936 (2) | 0.0677 (9) | |
H12A | 0.6957 | 0.0240 | 1.0845 | 0.102* | |
H12B | 0.7238 | 0.1839 | 1.1039 | 0.102* | |
H12C | 0.8817 | 0.1343 | 1.1596 | 0.102* | |
N1 | 0.5383 (2) | 0.34206 (18) | 0.52230 (14) | 0.0316 (4) | |
H1A | 0.5119 | 0.3691 | 0.5846 | 0.038* | |
N2 | 0.5133 (2) | 0.26329 (19) | 0.33965 (15) | 0.0316 (4) | |
N3 | 1.0600 (2) | 0.46253 (19) | 0.78212 (15) | 0.0331 (4) | |
N4 | 1.0288 (2) | 0.38197 (19) | 0.59895 (15) | 0.0322 (4) | |
N5 | 0.7559 (2) | 0.98398 (19) | 0.46006 (15) | 0.0328 (4) | |
N6 | 0.7271 (2) | 0.8921 (2) | 0.27791 (16) | 0.0346 (4) | |
N7 | 0.8369 (2) | 0.0963 (2) | 0.99199 (15) | 0.0405 (5) | |
O1 | 0.8073 (2) | 0.26955 (19) | 0.35280 (12) | 0.0460 (4) | |
O2 | 0.76758 (19) | 0.45526 (17) | 0.77458 (12) | 0.0420 (4) | |
O3 | 1.0169 (2) | 0.88547 (18) | 0.29070 (13) | 0.0454 (4) | |
O4 | 0.6535 (2) | −0.12680 (18) | 0.89406 (13) | 0.0489 (4) | |
O5 | 0.7311 (2) | 0.4853 (2) | 0.99285 (14) | 0.0437 (4) | |
O6 | 0.4087 (3) | 0.2772 (2) | 0.95776 (15) | 0.0455 (4) | |
S1 | 0.20223 (7) | 0.27339 (6) | 0.37913 (5) | 0.03975 (16) | |
S2 | 0.41841 (7) | 0.90828 (7) | 0.31867 (5) | 0.04311 (16) | |
S3 | 1.36683 (7) | 0.44883 (7) | 0.73832 (5) | 0.03996 (16) | |
H2A | 0.471 (3) | 0.228 (2) | 0.273 (2) | 0.034 (6)* | |
H3A | 1.108 (3) | 0.484 (3) | 0.856 (2) | 0.055 (8)* | |
H4A | 1.052 (3) | 0.359 (2) | 0.5431 (18) | 0.020 (5)* | |
H5A | 0.731 (3) | 1.016 (2) | 0.518 (2) | 0.042 (7)* | |
H6A | 0.683 (3) | 0.847 (2) | 0.210 (2) | 0.037 (7)* | |
H5B | 0.746 (4) | 0.476 (3) | 0.9328 (17) | 0.059 (9)* | |
H6B | 0.401 (5) | 0.236 (3) | 1.002 (3) | 0.093 (13)* | |
H5C | 0.655 (5) | 0.416 (3) | 0.982 (4) | 0.055 (16)* | 0.53 (4) |
H6C | 0.372 (6) | 0.342 (4) | 0.977 (5) | 0.07 (2)* | 0.53 (4) |
H5C' | 0.512 (3) | 0.308 (6) | 0.966 (5) | 0.064 (17)* | 0.47 (4) |
H6C' | 0.696 (9) | 0.551 (4) | 1.010 (6) | 0.10 (3)* | 0.47 (4) |
U11 | U22 | U33 | U12 | U13 | U23 | |
C1 | 0.0281 (10) | 0.0306 (10) | 0.0261 (10) | 0.0074 (8) | 0.0076 (8) | 0.0086 (8) |
C2 | 0.0317 (11) | 0.0351 (11) | 0.0231 (10) | 0.0090 (9) | 0.0070 (8) | 0.0071 (8) |
C3 | 0.0273 (10) | 0.0344 (11) | 0.0227 (9) | 0.0093 (8) | 0.0078 (8) | 0.0062 (8) |
C4 | 0.0269 (10) | 0.0360 (11) | 0.0233 (10) | 0.0106 (8) | 0.0073 (8) | 0.0067 (8) |
C5 | 0.0297 (10) | 0.0374 (11) | 0.0233 (10) | 0.0099 (9) | 0.0071 (8) | 0.0066 (9) |
C6 | 0.0288 (10) | 0.0341 (11) | 0.0254 (10) | 0.0095 (8) | 0.0076 (8) | 0.0074 (8) |
C7 | 0.0319 (10) | 0.0311 (11) | 0.0297 (10) | 0.0107 (9) | 0.0091 (8) | 0.0113 (9) |
C8 | 0.0315 (11) | 0.0358 (11) | 0.0261 (10) | 0.0075 (9) | 0.0077 (8) | 0.0081 (9) |
C9 | 0.0294 (10) | 0.0355 (11) | 0.0248 (10) | 0.0086 (9) | 0.0089 (8) | 0.0079 (8) |
C10 | 0.0408 (13) | 0.0523 (14) | 0.0259 (10) | 0.0179 (11) | 0.0094 (9) | 0.0131 (10) |
C11 | 0.0561 (16) | 0.0481 (15) | 0.0579 (17) | 0.0089 (13) | 0.0190 (13) | 0.0099 (13) |
C12 | 0.0684 (19) | 0.082 (2) | 0.0361 (14) | 0.0074 (16) | 0.0241 (13) | 0.0000 (14) |
N1 | 0.0263 (9) | 0.0439 (10) | 0.0229 (8) | 0.0124 (7) | 0.0083 (7) | 0.0069 (7) |
N2 | 0.0267 (9) | 0.0419 (10) | 0.0190 (8) | 0.0067 (8) | 0.0038 (7) | 0.0051 (8) |
N3 | 0.0272 (9) | 0.0458 (11) | 0.0212 (9) | 0.0111 (8) | 0.0053 (7) | 0.0053 (8) |
N4 | 0.0278 (9) | 0.0450 (11) | 0.0215 (9) | 0.0118 (8) | 0.0087 (7) | 0.0061 (8) |
N5 | 0.0281 (9) | 0.0437 (11) | 0.0239 (9) | 0.0116 (8) | 0.0075 (7) | 0.0074 (8) |
N6 | 0.0316 (10) | 0.0433 (11) | 0.0236 (9) | 0.0094 (8) | 0.0064 (8) | 0.0064 (8) |
N7 | 0.0372 (10) | 0.0503 (12) | 0.0293 (9) | 0.0124 (9) | 0.0108 (8) | 0.0065 (9) |
O1 | 0.0329 (8) | 0.0742 (12) | 0.0286 (8) | 0.0195 (8) | 0.0130 (7) | 0.0082 (8) |
O2 | 0.0313 (8) | 0.0616 (10) | 0.0295 (8) | 0.0148 (7) | 0.0127 (6) | 0.0064 (7) |
O3 | 0.0356 (8) | 0.0634 (11) | 0.0337 (8) | 0.0153 (8) | 0.0149 (7) | 0.0070 (8) |
O4 | 0.0520 (10) | 0.0529 (10) | 0.0280 (8) | 0.0019 (8) | 0.0057 (7) | 0.0092 (7) |
O5 | 0.0360 (9) | 0.0644 (13) | 0.0264 (9) | 0.0118 (9) | 0.0083 (7) | 0.0124 (9) |
O6 | 0.0423 (11) | 0.0552 (12) | 0.0312 (9) | 0.0073 (9) | 0.0079 (8) | 0.0115 (9) |
S1 | 0.0255 (3) | 0.0557 (4) | 0.0327 (3) | 0.0113 (2) | 0.0059 (2) | 0.0101 (3) |
S2 | 0.0288 (3) | 0.0583 (4) | 0.0400 (3) | 0.0146 (3) | 0.0067 (2) | 0.0156 (3) |
S3 | 0.0260 (3) | 0.0591 (4) | 0.0321 (3) | 0.0140 (2) | 0.0073 (2) | 0.0118 (3) |
C1—N1 | 1.364 (2) | C10—O4 | 1.238 (3) |
C1—N2 | 1.372 (3) | C10—N7 | 1.314 (3) |
C1—S1 | 1.646 (2) | C10—H10A | 0.9300 |
C2—O1 | 1.207 (2) | C11—N7 | 1.454 (3) |
C2—N2 | 1.376 (3) | C11—H11A | 0.9600 |
C2—C3 | 1.480 (3) | C11—H11B | 0.9600 |
C3—C4 | 1.347 (3) | C11—H11C | 0.9600 |
C3—N1 | 1.376 (2) | C12—N7 | 1.455 (3) |
C4—N4 | 1.389 (3) | C12—H12A | 0.9600 |
C4—C5 | 1.474 (3) | C12—H12B | 0.9600 |
C5—O2 | 1.221 (2) | C12—H12C | 0.9600 |
C5—N3 | 1.365 (3) | N1—H1A | 0.8600 |
C6—N4 | 1.353 (3) | N2—H2A | 0.78 (2) |
C6—N3 | 1.380 (3) | N3—H3A | 0.87 (3) |
C6—S3 | 1.644 (2) | N4—H4A | 0.76 (2) |
C7—N5 | 1.361 (3) | N5—H5A | 0.81 (2) |
C7—N6 | 1.374 (3) | N6—H6A | 0.81 (2) |
C7—S2 | 1.643 (2) | O5—H5B | 0.787 (17) |
C8—O3 | 1.212 (2) | O5—H5C | 0.788 (17) |
C8—N6 | 1.374 (3) | O5—H6C' | 0.788 (17) |
C8—C9 | 1.479 (3) | O6—H6B | 0.796 (19) |
C9—C9i | 1.346 (4) | O6—H6C | 0.796 (19) |
C9—N5 | 1.382 (3) | O6—H5C' | 0.796 (19) |
N1—C1—N2 | 106.45 (17) | H11B—C11—H11C | 109.5 |
N1—C1—S1 | 127.77 (15) | N7—C12—H12A | 109.5 |
N2—C1—S1 | 125.78 (15) | N7—C12—H12B | 109.5 |
O1—C2—N2 | 128.10 (19) | H12A—C12—H12B | 109.5 |
O1—C2—C3 | 128.15 (19) | N7—C12—H12C | 109.5 |
N2—C2—C3 | 103.75 (17) | H12A—C12—H12C | 109.5 |
C4—C3—N1 | 128.45 (18) | H12B—C12—H12C | 109.5 |
C4—C3—C2 | 125.31 (18) | C1—N1—C3 | 111.05 (16) |
N1—C3—C2 | 106.24 (16) | C1—N1—H1A | 124.5 |
C3—C4—N4 | 127.29 (18) | C3—N1—H1A | 124.5 |
C3—C4—C5 | 127.39 (18) | C1—N2—C2 | 112.49 (17) |
N4—C4—C5 | 105.32 (16) | C1—N2—H2A | 124.6 (17) |
O2—C5—N3 | 127.62 (19) | C2—N2—H2A | 122.6 (17) |
O2—C5—C4 | 127.65 (19) | C5—N3—C6 | 112.15 (17) |
N3—C5—C4 | 104.73 (17) | C5—N3—H3A | 124.4 (17) |
N4—C6—N3 | 106.40 (17) | C6—N3—H3A | 122.7 (18) |
N4—C6—S3 | 128.59 (16) | C6—N4—C4 | 111.39 (17) |
N3—C6—S3 | 125.01 (15) | C6—N4—H4A | 123.6 (15) |
N5—C7—N6 | 106.53 (18) | C4—N4—H4A | 125.0 (16) |
N5—C7—S2 | 127.50 (16) | C7—N5—C9 | 111.07 (18) |
N6—C7—S2 | 125.97 (16) | C7—N5—H5A | 123.5 (17) |
O3—C8—N6 | 127.64 (19) | C9—N5—H5A | 125.5 (17) |
O3—C8—C9 | 128.35 (19) | C8—N6—C7 | 112.34 (18) |
N6—C8—C9 | 104.01 (17) | C8—N6—H6A | 120.7 (17) |
C9i—C9—N5 | 127.9 (2) | C7—N6—H6A | 125.8 (17) |
C9i—C9—C8 | 126.1 (2) | C10—N7—C11 | 121.3 (2) |
N5—C9—C8 | 105.95 (17) | C10—N7—C12 | 121.2 (2) |
O4—C10—N7 | 126.3 (2) | C11—N7—C12 | 117.4 (2) |
O4—C10—H10A | 116.9 | H5B—O5—H5C | 104 (4) |
N7—C10—H10A | 116.9 | H5B—O5—H6C' | 109 (5) |
N7—C11—H11A | 109.5 | H5C—O5—H6C' | 110 (5) |
N7—C11—H11B | 109.5 | H6B—O6—H6C | 106 (5) |
H11A—C11—H11B | 109.5 | H6B—O6—H5C' | 107 (4) |
N7—C11—H11C | 109.5 | H6C—O6—H5C' | 108 (5) |
H11A—C11—H11C | 109.5 | ||
O1—C2—C3—C4 | 1.1 (4) | S1—C1—N2—C2 | −178.67 (16) |
N2—C2—C3—C4 | −179.1 (2) | O1—C2—N2—C1 | 178.6 (2) |
O1—C2—C3—N1 | −179.1 (2) | C3—C2—N2—C1 | −1.1 (2) |
N2—C2—C3—N1 | 0.6 (2) | O2—C5—N3—C6 | −179.5 (2) |
N1—C3—C4—N4 | −179.9 (2) | C4—C5—N3—C6 | −0.3 (2) |
C2—C3—C4—N4 | −0.2 (4) | N4—C6—N3—C5 | 0.1 (2) |
N1—C3—C4—C5 | 0.7 (4) | S3—C6—N3—C5 | 179.78 (16) |
C2—C3—C4—C5 | −179.7 (2) | N3—C6—N4—C4 | 0.2 (2) |
C3—C4—C5—O2 | −0.8 (4) | S3—C6—N4—C4 | −179.47 (16) |
N4—C4—C5—O2 | 179.6 (2) | C3—C4—N4—C6 | −180.0 (2) |
C3—C4—C5—N3 | 180.0 (2) | C5—C4—N4—C6 | −0.4 (2) |
N4—C4—C5—N3 | 0.4 (2) | N6—C7—N5—C9 | −2.1 (2) |
O3—C8—C9—C9i | 1.5 (4) | S2—C7—N5—C9 | 177.30 (16) |
N6—C8—C9—C9i | −179.2 (3) | C9i—C9—N5—C7 | −178.8 (3) |
O3—C8—C9—N5 | −177.4 (2) | C8—C9—N5—C7 | 0.1 (2) |
N6—C8—C9—N5 | 1.8 (2) | O3—C8—N6—C7 | 176.1 (2) |
N2—C1—N1—C3 | −0.8 (2) | C9—C8—N6—C7 | −3.2 (2) |
S1—C1—N1—C3 | 179.13 (16) | N5—C7—N6—C8 | 3.4 (2) |
C4—C3—N1—C1 | 179.8 (2) | S2—C7—N6—C8 | −175.98 (16) |
C2—C3—N1—C1 | 0.1 (2) | O4—C10—N7—C11 | −177.5 (2) |
N1—C1—N2—C2 | 1.2 (2) | O4—C10—N7—C12 | −2.1 (4) |
Symmetry code: (i) −x+2, −y+2, −z+1. |
D—H···A | D—H | H···A | D···A | D—H···A |
C11—H11A···O3ii | 0.96 | 2.56 | 3.495 (3) | 166 |
N1—H1A···O2 | 0.86 | 2.57 | 3.059 (2) | 117 |
N1—H1A···S3iii | 0.86 | 2.55 | 3.3948 (18) | 167 |
N2—H2A···O4iv | 0.78 (2) | 1.99 (2) | 2.774 (2) | 175 (2) |
N3—H3A···O5v | 0.87 (3) | 1.96 (3) | 2.803 (2) | 164 (2) |
N4—H4A···O1 | 0.76 (2) | 2.52 (2) | 2.980 (2) | 119.9 (18) |
N4—H4A···S1vi | 0.76 (2) | 2.70 (2) | 3.448 (2) | 166.3 (19) |
N5—H5A···O3i | 0.81 (2) | 2.56 (2) | 3.024 (2) | 118 (2) |
N5—H5A···S2vii | 0.81 (2) | 2.67 (3) | 3.466 (2) | 168 (2) |
N6—H6A···O6viii | 0.81 (2) | 2.04 (2) | 2.842 (3) | 174 (2) |
O5—H5B···O2 | 0.79 (2) | 2.02 (2) | 2.805 (2) | 176 (3) |
O6—H6B···O4ix | 0.80 (2) | 2.03 (2) | 2.817 (3) | 173 (3) |
O5—H5C···O6 | 0.79 (2) | 2.08 (2) | 2.843 (3) | 162 (5) |
O6—H6C···O5x | 0.80 (2) | 2.12 (2) | 2.913 (3) | 172 (6) |
O6—H5C′···O5 | 0.80 (2) | 2.14 (3) | 2.843 (3) | 148 (5) |
O5—H6C′···O6x | 0.79 (2) | 2.13 (2) | 2.913 (3) | 175 (7) |
Symmetry codes: (i) −x+2, −y+2, −z+1; (ii) −x+2, −y+1, −z+1; (iii) x−1, y, z; (iv) −x+1, −y, −z+1; (v) −x+2, −y+1, −z+2; (vi) x+1, y, z; (vii) −x+1, −y+2, −z+1; (viii) −x+1, −y+1, −z+1; (ix) −x+1, −y, −z+2; (x) −x+1, −y+1, −z+2. |
Experimental details
Crystal data | |
Chemical formula | 3C6H4N4O2S2·2C3H7NO·4H2O |
Mr | 903.01 |
Crystal system, space group | Triclinic, P1 |
Temperature (K) | 298 |
a, b, c (Å) | 8.0655 (16), 10.391 (2), 12.735 (3) |
α, β, γ (°) | 105.60 (1), 103.47 (1), 102.81 (2) |
V (Å3) | 952.5 (3) |
Z | 1 |
Radiation type | Mo Kα |
µ (mm−1) | 0.44 |
Crystal size (mm) | 0.24 × 0.22 × 0.20 |
Data collection | |
Diffractometer | Rigaku Mercury2 (2x2 bin mode) diffractometer |
Absorption correction | Multi-scan (CrystalClear; Rigaku, 2005) |
Tmin, Tmax | 0.903, 0.918 |
No. of measured, independent and observed [I > 2σ(I)] reflections | 9925, 4359, 3164 |
Rint | 0.027 |
(sin θ/λ)max (Å−1) | 0.649 |
Refinement | |
R[F2 > 2σ(F2)], wR(F2), S | 0.042, 0.110, 1.03 |
No. of reflections | 4359 |
No. of parameters | 298 |
No. of restraints | 9 |
H-atom treatment | H atoms treated by a mixture of independent and constrained refinement |
Δρmax, Δρmin (e Å−3) | 0.41, −0.21 |
Computer programs: CrystalClear (Rigaku, 2005), SHELXS97 (Sheldrick, 2008), SHELXL97 (Sheldrick, 2008), SHELXTL (Sheldrick, 2008).
D—H···A | D—H | H···A | D···A | D—H···A |
C11—H11A···O3i | 0.96 | 2.56 | 3.495 (3) | 165.9 |
N1—H1A···O2 | 0.86 | 2.57 | 3.059 (2) | 117.2 |
N1—H1A···S3ii | 0.86 | 2.55 | 3.3948 (18) | 166.8 |
N2—H2A···O4iii | 0.78 (2) | 1.99 (2) | 2.774 (2) | 175 (2) |
N3—H3A···O5iv | 0.87 (3) | 1.96 (3) | 2.803 (2) | 164 (2) |
N4—H4A···O1 | 0.76 (2) | 2.52 (2) | 2.980 (2) | 119.9 (18) |
N4—H4A···S1v | 0.76 (2) | 2.70 (2) | 3.448 (2) | 166.3 (19) |
N5—H5A···O3vi | 0.81 (2) | 2.56 (2) | 3.024 (2) | 118 (2) |
N5—H5A···S2vii | 0.81 (2) | 2.67 (3) | 3.466 (2) | 168 (2) |
N6—H6A···O6viii | 0.81 (2) | 2.04 (2) | 2.842 (3) | 174 (2) |
O5—H5B···O2 | 0.787 (17) | 2.019 (18) | 2.805 (2) | 176 (3) |
O6—H6B···O4ix | 0.796 (19) | 2.026 (19) | 2.817 (3) | 173 (3) |
O5—H5C···O6 | 0.788 (17) | 2.08 (2) | 2.843 (3) | 162 (5) |
O6—H6C···O5x | 0.796 (19) | 2.12 (2) | 2.913 (3) | 172 (6) |
O6—H5C'···O5 | 0.796 (19) | 2.14 (3) | 2.843 (3) | 148 (5) |
O5—H6C'···O6x | 0.788 (17) | 2.127 (19) | 2.913 (3) | 175 (7) |
Symmetry codes: (i) −x+2, −y+1, −z+1; (ii) x−1, y, z; (iii) −x+1, −y, −z+1; (iv) −x+2, −y+1, −z+2; (v) x+1, y, z; (vi) −x+2, −y+2, −z+1; (vii) −x+1, −y+2, −z+1; (viii) −x+1, −y+1, −z+1; (ix) −x+1, −y, −z+2; (x) −x+1, −y+1, −z+2. |