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ISSN: 2056-9890

Crystal structure and Hirshfeld surface analysis of (Z)-N′-(4-meth­­oxy­benzo[d]thia­zol-2-yl)-3,6-di-p-tolyl-1,2,4-triazine-5-carboximidamide

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aThe Ural Federal University, named after the first president of Russia, B. N. Yeltsin, Mira. 19 st., 620002, Yekaterinburg, Russian Federation, bPostovsky Institute of Organic Synthesis, Ural Branch of the Russian Academy of Sciences, Sof'i Kovalevskoy 22 st., 620137, Yekaterinburg, Russian Federation, cSirius University of Science and Technology, Olympic Avenue 1, 354340, Sirius Federal Territory, Russian Federation, dM. N. Mikheev Institute of Metal Physics of the Ural Branch of the Russian Academy of Sciences, Sof'i Kovalevskoy 18 st., 620108, Yekaterinburg, Russian Federation, eAzerbaijan State Pedagogical University, 68 Uzeyir Hajibeyov St., AZ 1000, Baku, Azerbaijan, fDepartment of Physics, Faculty of Sciences, Erciyes University, 38039 Kayseri, Türkiye, gDepartment of Chemistry, University of Gondar, PO Box 196, Gondar, Ethiopia, and hAzerbaijan Medical University, Scientific Research Centre (SRC), A. Kasumzade St. 14, AZ 1022, Baku, Azerbaijan
*Correspondence e-mail: [email protected]

Edited by T. Akitsu, Tokyo University of Science, Japan (Received 9 July 2026; accepted 28 July 2026; online 4 August 2026)

The title mol­ecule, C26H22N6OS, has a stable conformation due to two intra­molecular N—H⋯·N hydrogen bonds that produce fused S(5) and S(6) rings. Layers parallel to the (010) plane are formed in the crystal by inter­molecular C—H⋯O and C—H⋯N hydrogen bonding. Additionally, C—H⋯π and ππ [centroid-to-centroid distance = 3.7380 (12) Å] inter­actions link the mol­ecules, creating ribbons along the a-axis direction. The inter­molecular inter­actions were qu­anti­fied using Hirshfeld surface analysis and two-dimensional fingerprint plots, which revealed the relative contributions of H⋯H (48.6%), C⋯H/H⋯C (18.8%), and N⋯H/H⋯N (12.0%) contacts to the crystal packing.

1. Chemical context

Heterocyclic amidine derivatives of benzo­thia­zole are notable pharmacophores with anti-inflammatory (Sondhi et al., 2011View full citation; Racane et al., 2023View full citation) and neuroprotective (Anzini et al., 2010View full citation) activities. In recent years, benzo­thia­zole-triazine hybrid mol­ecules have been reported as potent anti-tumor agents (Kumar et al., 2015View full citation) and COX-2 inhibitors (Ertas et al., 2022View full citation).

[Scheme 1]

Previously, we have developed a method for modification of 5-cyano-1,2,4-triazines with heterocyclic amines via a nucleophilic ipso-substitution reaction (Krinochkin et al., 2022View full citation; Rammohan et al., 2021View full citation), thus as our next step we have tried to apply 2-amino­benzo­thia­zoles to this methodology. It was found that solvent-free inter­action of 3,6-di-p-tolyl-1,2,4-triazine-5-carbo­nitrile (1) with 4-meth­oxy­benzo[d]thia­zol-2-amine (2) at 423 K leads to the product (Z)-N′-(4-meth­oxy­benzo[d]thia­zol-2-yl)-3,6-di-p-tolyl-1,2,4-triazine-5-carboximidamide (3). There is six-membered intra­molecular resonance-assisted hydrogen bonding in the crystal structure of (3), which can be used in mol­ecular recognition (Mahmudov & Pombeiro, 2016View full citation).

2. Structural commentary

As shown Fig. 1[link], the conformation of the title mol­ecule is stabilized by two intra­molecular N—H⋯N hydrogen bonds, forming fused S(5) and S(6) rings (Table 1[link]; Bernstein et al., 1995View full citation). In a six-membered resonance-assisted hydrogen-bonding (RAHB) ring, the N3—H3B⋯N1 bond with [N⋯N distance = 2.663 (3) Å] falls in the N⋯N distance range [2.542–2.897 Å] observed for other supra­molecular synthons (Gurbanov et al., 2020View full citation), and indicates a low delocalization within the heterodienic moiety. The N—H⋯N angle of 128 (2)° differs significantly from the average O—H⋯O angle (149°; Bertolasi et al., 1993View full citation) of β-diketone enols involved in similar intra­molecular RAHB.

Table 1
Hydrogen-bond geometry (Å, °)

Cg4 is the centroid of the C13–C18 ring.

D—H⋯A D—H H⋯A DA D—H⋯A
N3—H3A⋯N4 0.89 (2) 2.17 (2) 2.602 (3) 109 (2)
N3—H3B⋯N1 0.94 (2) 1.98 (2) 2.665 (3) 128 (2)
C8—H8C⋯N5i 0.96 2.60 3.532 (4) 163
C17—H17⋯O1ii 0.93 2.60 3.492 (3) 161
C24—H24⋯Cg4iii 0.93 2.96 3.796 (3) 151
Symmetry codes: (i) Mathematical equation; (ii) Mathematical equation; (iii) Mathematical equation.
[Figure 1]
Figure 1
Mol­ecular structure of the title compound showing the atomic labelling. Displacement ellipsoids are drawn at the 30% probability level.

The 1,3-benzo­thia­zole ring system (S1/N1/C1–C7) is essentially planar with an r.m.s. deviation of 0.002 Å. The least-squares plane of this ring system forms dihedral angles of 8.18 (8), 64.96 (10), and 5.33 (9)°, respectively, with the planes of the 1,2,4-triazine ring (N4–N6/C10–C12) and the benzene rings (C13–C18 and C20–C25) of its two attached 4-methyl­phenyl groups. The benzene rings (C13–C18 and C20–C25) of the two 4-methyl­phenyl groups form angles of 68.68 (12)° with each other, while they make the angles of 57.10 (11) and 11.66 (10)°, respectively, with the 1,2,4-triazine ring plane (N4–N6/C10–C12). The bond lengths and angles in the title compound are in good agreement with those reported for related compounds (see Database survey section).

3. Supra­molecular features and Hirshfeld surface analysis

In the crystal, the mol­ecules are linked by C—H⋯O and C—H⋯N hydrogen bonds, forming sheets parallel to the (010) plane (Figs. 2[link], 3[link] and 4[link]; Table 1[link]). The mol­ecules are further connected by C—H⋯π and ππ inter­actions [Cg2⋯Cg5a = 3.7380 (12) Å, slippage = 1.201 Å; symmetry code (a) 1 − x, 1 − y, −z; where Cg2 and Cg5 are the centroids of the 1,2,4-triazine ring (N4–N6/C10–C12) and the benzene ring (C20–C25) of the 4-methyl­phenyl group, respectively], forming ribbons along the a-axis direction (Figs. 5[link] and 6[link]; Table 1[link]).

[Figure 2]
Figure 2
A partial view of the C—H⋯O and C—H⋯N bonds (dashed lines) in the unit cell. H atoms not involved in hydrogen bonding have been omitted.
[Figure 3]
Figure 3
Crystal packing of the title compound viewed along the a axis showing the C—H⋯O and C—H⋯N bonds (dashed lines). H atoms not involved in hydrogen bonding have been omitted.
[Figure 4]
Figure 4
Crystal packing of the title compound viewed along the b axis showing the C—H⋯O and C—H⋯N bonds (dashed lines). H atoms not involved in hydrogen bonding have been omitted.
[Figure 5]
Figure 5
A view along the a-axis showing the C—H⋯π and ππ inter­actions (dashed lines).
[Figure 6]
Figure 6
A view along the c-axis showing the C—H⋯π and ππ inter­actions (dashed lines).

A Hirshfeld surface analysis was conducted in order to confirm the existence of hydrogen bonds and inter­molecular inter­actions (Table 2[link]) in the crystal structure and evaluate the contributions from the various inter­molecular inter­actions. The three-dimensional Hirshfeld surface with a dnorm (normalized contact distance) plot and two-dimensional fingerprint plots were generated with Crystal Explorer 17.5 (Spackman et al., 2021View full citation). The Hirshfeld surface was plotted over the range −0.1153 (red) to +1.3440 (blue) a.u. (Fig. 7[link]). The red spots on the surface indicate the sites of the C8—H8C⋯N5i and C17—H17⋯O1ii inter­actions. The two-dimensional fingerprint plots (Fig. 8[link]) show that the most significant contacts are H⋯H (48.6%), C⋯H/H⋯C (18.8%) and N⋯H/H⋯N (12.0%) inter­actions. Smaller contributions are made by S⋯H/H⋯S (5.4%), C⋯C (5.3%), N⋯C/C⋯N (4.0%), S⋯C/C⋯S (1.1%), O⋯C/C⋯O (0.8%), N⋯N (0.7%), O⋯N/N⋯O (0.2%) and S⋯S (0.1%) inter­actions.

Table 2
Summary of short inter­atomic contacts (Å)

Contact Distance Symmetry operation
C4⋯S1 3.67 1 − x, −y, 1 − z
H19C⋯·H19C 2.56 x, −y, 1 − z
O1⋯H17 2.60 1 + x, y, z
H18⋯O1 2.87 1 − x, 1 − y, 1 − z
H26C⋯N2 2.68 1 − x, 1 − y, −z
H8A⋯H3A 2.53 2 − x, 1 − y, 1 − z
H25⋯H8C 2.43 −1 + x, y, −1 + z
H25⋯N6 2.81 x, 1 − y, −z
H26B⋯H4 2.51 x, 1 + y, −1 + z
C26⋯C26 2.55 1 − x, 2 − y, −z
[Figure 7]
Figure 7
The Hirshfeld dnorm surface for the asymmetric unit with several neighboring mol­ecules. The C—H⋯O and C—H⋯N hydrogen bonds are depicted by red dashed lines.
[Figure 8]
Figure 8
The two-dimensional fingerprint plots for the title compound showing (a) all inter­actions, and those delineated into (b) H⋯H, (c) C⋯H/H⋯C and (d) N⋯H / H⋯N inter­actions. The di and de values are the closest inter­nal and external distances (in Å) from given points on the Hirshfeld surface.

4. Database survey

A search of the Cambridge Structural Database (CSD, Version 6.00, update of April 2025; Groom et al., 2016View full citation) for the N′-(1,3-benzo­thia­zol-2-yl)-1,2,4-triazine-5-carboximidamide unit revealed that the five compounds most closely related to the title compound are N-[(1,3-benzo­thia­zol-2-yl)carbamo­thio­yl]-4-bromo­benzamide (JOMGOL: Sow et al., 2024View full citation), N′-(1,3-benzo­thia­zol-2-yl)benzene­sulfono­hydrazide (COCFOS: Baddeley et al., 2019View full citation), N-(1,3-benzo­thia­zol-2-yl)acetamide (TIJPAF: Nayak et al., 2013View full citation), 2-[(6-meth­oxy-1,3-benzo­thia­zol-2-yl)carbonoimido­yl]phenol (SUFFEG; Hijji et al., 2015View full citation) and N-(4,6-di­methyl­pyrimidin-2-yl)-1,3-benzo­thia­zol-2-amine (YAJBUI: Mohamed et al., 2011View full citation).

JOMGOL crystallizes in the monoclinic space group P21/n. In the crystal, pairs of adjacent mol­ecules inter­act via inter­molecular hydrogen bonds of type C—H⋯N, C—H⋯S and N—H⋯S, resulting in mol­ecular layers parallel to the ac plane.

COCFOS crystallizes in the ortho­rhom­bic space group Pbca, with two mol­ecules (A and B) in the asymmetric unit. In the crystal, mol­ecules A and B form a supra­molecular dimer by pairwise N—H⋯N hydrogen bonding. The dimers are assembled into chains along the a-axis direction by N—H⋯O hydrogen bonds between A mol­ecules, whilst the mol­ecules are linked along [001] by linkages between centrosymmetrically related B mol­ecules. As a result, a wavy supermolecular layer is formed. C—H⋯O points of contact are visible as layers build along the b axis.

TIJPAF crystallizes in the monoclinic space group P21/c, with two mol­ecules (A and B) in the asymmetric unit. In the crystal, pairs of N—H⋯N hydrogen bonds link the A and B mol­ecules into dimers, generating R22(8) loops. The dimers stack along [100].

SUFFEG crystallizes in the ortho­rhom­bic space group Pna21, with two mol­ecules in the asymmetric unit. The two independent mol­ecules are linked by a pair of C—H⋯O hydrogen bonds, forming dimers with an R22(20) ring motif. These dimers are further linked into sheets in the ab plane by weak inter­molecular C—H⋯N inter­actions.

YAJBUI crystallizes in the monoclinic space group P21/n. The secondary amino N atom forms an inter­molecular N—H⋯N hydrogen bond to an N atom of the fused ring of an adjacent mol­ecule, generating a centrosymmetric cyclic hydrogen-bonded dimer with an R22(8) motif.

5. Synthesis and crystallization

The starting compound 5-cyano-1,2,4-triazine was prepared according to a literature procedure (Kozhevnikov et al., 2002View full citation). 0.37 mmol of 3,6-di-p-tolyl-1,2,4-triazine-5-carbo­nitrile (1) and 0.41 mmol of 4-meth­oxy­benzo[d]thia­zol-2-amine (2) were added into a round-bottom flask and the resulting mixture was heated at 423 K for 8 h under inert atmosphere. The product was isolated by column chromatography (eluent AcOEt: CDCl3 = 1:9; Rf = 0.7 − 0.4) (Fig. 9[link]). Analytical samples were obtained by recrystallization from ethanol solution. A single crystal of the title compound (3) was obtained by slow evaporation of its chloro­form solution.

[Figure 9]
Figure 9
Synthesis of title compound.

Yield 69 mg (40%). 1H NMR (400 MHz, CDCl3): δ = 2.43 (s, 3H, CH3), 2.48 (s, 3H, CH3), 4.02 (s, 3H, OCH3), 6.85-6.91 (m, 1H, benzo­thia­zole), 7.19–7.28 (m, 3H, C6H4CH3+benzo­thia­zole), 7.28–7.33 (m, 1H, benzo­thia­zole), 7.36–7.41 (m, 2H, C6H4CH3), 7.53 (br. s, 1H, NH), 7.69–7.75 (m, 2H, C6H4CH3), 8.47–8.52 (m, 2H, C6H4CH3), 10.38 (br. s, 1H, NH). Mass-spectrum, m/z (Irel, %): m/z: 467.17 [M+H]+ (100). Found, %: C 66.91, H 4.73, N 18.02. C26H22N6OS. Calculated, %: C 66.93, H 4.75, N 18.01.

6. Refinement

Crystal data, data collection and structure refinement details are summarized in Table 3[link]. The H atoms of the NH2 groups were found in difference-Fourier maps and were refined with Uiso(H) = 1.2Ueq(N). The C-bound H atoms were positioned geometrically (C—H = 0.93–0.96 Å) and refined using a riding model, with Uiso(H) = 1.2 or 1.5Ueq(C).

Table 3
Experimental details

Crystal data
Chemical formula C26H22N6OS
Mr 466.55
Crystal system, space group Triclinic, PMathematical equation
Temperature (K) 293
a, b, c (Å) 9.0055 (1), 11.5397 (1), 11.7583 (1)
α, β, γ (°) 103.401 (1), 100.311 (1), 95.215 (1)
V3) 1158.22 (2)
Z 2
Radiation type Mo Kα
μ (mm−1) 0.17
Crystal size (mm) 0.41 × 0.28 × 0.13
 
Data collection
Diffractometer XtaLAB Synergy, Dualflex, HyPix
Absorption correction Multi-scan (CrysAlis PRO; Rigaku OD, 2021View full citation)
Tmin, Tmax 0.745, 0.978
No. of measured, independent and observed [I > 2σ(I)] reflections 176835, 6298, 3926
Rint 0.071
(sin θ/λ)max−1) 0.695
 
Refinement
R[F2 > 2σ(F2)], wR(F2), S 0.050, 0.180, 1.13
No. of reflections 6298
No. of parameters 316
H-atom treatment H atoms treated by a mixture of independent and constrained refinement
Δρmax, Δρmin (e Å−3) 0.23, −0.33
Computer programs: CrysAlis PRO (Rigaku OD, 2021View full citation), SHELXT (Sheldrick, 2015aView full citation), SHELXL (Sheldrick, 2015bView full citation), ORTEP-3 for Windows (Farrugia, 2012View full citation) and PLATON (Spek, 2020View full citation).

Supporting information


Computing details top

(Z)-N'-(4-Methoxybenzo[d]thiazol-2-yl)-3,6-di-p-tolyl-1,2,4-triazine-5-carboximidamide top
Crystal data top
C26H22N6OSZ = 2
Mr = 466.55F(000) = 488
Triclinic, P1Dx = 1.338 Mg m3
a = 9.0055 (1) ÅMo Kα radiation, λ = 0.71073 Å
b = 11.5397 (1) ÅCell parameters from 3380 reflections
c = 11.7583 (1) Åθ = 1.8–25.2°
α = 103.401 (1)°µ = 0.17 mm1
β = 100.311 (1)°T = 293 K
γ = 95.215 (1)°Block, yellow
V = 1158.22 (2) Å30.41 × 0.28 × 0.13 mm
Data collection top
XtaLAB Synergy, Dualflex, HyPix
diffractometer
6298 independent reflections
Radiation source: micro-focus sealed X-ray tube, PhotonJet (Mo) X-ray Source3926 reflections with I > 2σ(I)
Mirror monochromatorRint = 0.071
ω scansθmax = 29.6°, θmin = 1.8°
Absorption correction: multi-scan
(CrysAlisPro; Rigaku OD, 2021)
h = 1212
Tmin = 0.745, Tmax = 0.978k = 1615
176835 measured reflectionsl = 1516
Refinement top
Refinement on F2Primary atom site location: difference Fourier map
Least-squares matrix: fullSecondary atom site location: difference Fourier map
R[F2 > 2σ(F2)] = 0.050Hydrogen site location: mixed
wR(F2) = 0.180H atoms treated by a mixture of independent and constrained refinement
S = 1.13 w = 1/[σ2(Fo2) + (0.0631P)2 + 0.5317P]
where P = (Fo2 + 2Fc2)/3
6298 reflections(Δ/σ)max < 0.001
316 parametersΔρmax = 0.23 e Å3
0 restraintsΔρmin = 0.33 e Å3
Special details top

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.

Fractional atomic coordinates and isotropic or equivalent isotropic displacement parameters (Å2) top
xyzUiso*/Ueq
C10.5038 (2)0.27699 (18)0.47268 (18)0.0465 (4)
C20.6980 (2)0.26819 (18)0.61272 (17)0.0466 (4)
C30.5968 (3)0.1778 (2)0.6285 (2)0.0550 (5)
C40.6385 (3)0.1141 (2)0.7144 (2)0.0705 (7)
H40.5707380.0531600.7241530.085*
C50.7819 (3)0.1445 (3)0.7834 (2)0.0748 (8)
H50.8119680.1027070.8404280.090*
C60.8843 (3)0.2356 (3)0.7711 (2)0.0668 (7)
H60.9805450.2547480.8206830.080*
C70.8450 (2)0.2984 (2)0.68614 (19)0.0530 (5)
C81.0894 (3)0.4134 (3)0.7260 (3)0.0911 (10)
H8A1.1402920.4796080.7048300.137*
H8B1.1375880.3431660.7030400.137*
H8C1.0952600.4328970.8107270.137*
C90.4539 (2)0.39486 (18)0.33990 (16)0.0423 (4)
C100.3467 (2)0.42415 (17)0.24019 (16)0.0412 (4)
C110.3239 (2)0.53073 (18)0.09882 (17)0.0431 (4)
C120.1965 (2)0.36600 (19)0.18987 (18)0.0453 (4)
C130.1038 (2)0.28046 (19)0.23459 (18)0.0468 (5)
C140.0420 (3)0.1680 (2)0.1617 (2)0.0571 (5)
H140.0594790.1461220.0844470.068*
C150.0451 (3)0.0881 (2)0.2018 (3)0.0662 (6)
H150.0827820.0120510.1519420.079*
C160.0780 (3)0.1179 (3)0.3144 (3)0.0667 (7)
C170.0205 (3)0.2330 (3)0.3851 (2)0.0717 (7)
H170.0440450.2569970.4601320.086*
C180.0705 (3)0.3125 (2)0.3471 (2)0.0610 (6)
H180.1096370.3880640.3973340.073*
C190.1738 (4)0.0310 (3)0.3591 (3)0.1027 (11)
H19A0.2310540.0311300.2924710.154*
H19B0.2425850.0731610.4014880.154*
H19C0.1087560.0042130.4116810.154*
C200.3869 (2)0.62587 (18)0.04898 (18)0.0456 (4)
C210.5380 (2)0.67711 (19)0.0873 (2)0.0516 (5)
H210.6007720.6525390.1465020.062*
C220.5965 (3)0.7648 (2)0.0380 (2)0.0571 (5)
H220.6979770.7987960.0656260.069*
C230.5077 (3)0.80274 (19)0.0510 (2)0.0545 (5)
C240.3563 (3)0.7517 (2)0.0881 (2)0.0600 (6)
H240.2940260.7761570.1476590.072*
C250.2957 (3)0.6656 (2)0.0388 (2)0.0544 (5)
H250.1931870.6339150.0645150.065*
C260.5720 (4)0.8962 (2)0.1063 (3)0.0733 (7)
H26A0.6529340.9498870.0485770.110*
H26B0.4931200.9410060.1315360.110*
H26C0.6108470.8573960.1741140.110*
N10.64364 (19)0.32416 (15)0.52443 (14)0.0455 (4)
N20.40818 (19)0.30594 (16)0.38132 (15)0.0494 (4)
N30.5885 (2)0.46419 (19)0.37481 (17)0.0542 (5)
H3A0.598 (3)0.527 (2)0.344 (2)0.065*
H3B0.664 (3)0.445 (2)0.431 (2)0.065*
N40.40762 (18)0.50838 (15)0.19569 (14)0.0440 (4)
N50.1895 (2)0.46715 (18)0.04002 (16)0.0560 (5)
N60.12501 (19)0.38601 (18)0.08723 (16)0.0544 (5)
O10.93428 (18)0.39028 (16)0.66585 (15)0.0650 (4)
S10.42638 (7)0.16195 (6)0.52779 (6)0.0669 (2)
Atomic displacement parameters (Å2) top
U11U22U33U12U13U23
C10.0459 (10)0.0492 (11)0.0447 (10)0.0013 (8)0.0035 (8)0.0194 (9)
C20.0510 (11)0.0504 (11)0.0405 (10)0.0120 (9)0.0056 (8)0.0165 (8)
C30.0611 (13)0.0542 (12)0.0529 (12)0.0088 (10)0.0064 (10)0.0236 (10)
C40.0857 (18)0.0673 (15)0.0701 (16)0.0128 (13)0.0137 (14)0.0415 (13)
C50.0890 (19)0.0844 (19)0.0641 (15)0.0310 (16)0.0092 (14)0.0424 (14)
C60.0663 (15)0.0840 (18)0.0549 (13)0.0268 (13)0.0011 (11)0.0295 (12)
C70.0496 (11)0.0643 (13)0.0455 (11)0.0128 (10)0.0051 (9)0.0168 (10)
C80.0507 (14)0.134 (3)0.0775 (19)0.0033 (16)0.0105 (13)0.0300 (19)
C90.0414 (10)0.0470 (10)0.0365 (9)0.0014 (8)0.0021 (7)0.0128 (8)
C100.0391 (9)0.0468 (10)0.0378 (9)0.0047 (8)0.0047 (7)0.0139 (8)
C110.0391 (9)0.0503 (11)0.0415 (10)0.0079 (8)0.0040 (7)0.0176 (8)
C120.0391 (9)0.0542 (11)0.0433 (10)0.0041 (8)0.0044 (8)0.0175 (9)
C130.0351 (9)0.0580 (12)0.0480 (11)0.0033 (8)0.0030 (8)0.0203 (9)
C140.0505 (12)0.0634 (14)0.0570 (13)0.0031 (10)0.0116 (10)0.0163 (11)
C150.0571 (14)0.0591 (14)0.0802 (17)0.0023 (11)0.0105 (12)0.0201 (12)
C160.0510 (13)0.0774 (17)0.0797 (17)0.0009 (11)0.0124 (12)0.0397 (14)
C170.0647 (15)0.095 (2)0.0580 (14)0.0052 (14)0.0196 (12)0.0257 (14)
C180.0558 (13)0.0708 (15)0.0534 (13)0.0038 (11)0.0129 (10)0.0133 (11)
C190.093 (2)0.108 (3)0.114 (3)0.019 (2)0.025 (2)0.053 (2)
C200.0468 (10)0.0481 (11)0.0440 (10)0.0097 (8)0.0061 (8)0.0167 (8)
C210.0478 (11)0.0544 (12)0.0556 (12)0.0059 (9)0.0056 (9)0.0241 (10)
C220.0528 (12)0.0550 (12)0.0649 (14)0.0020 (10)0.0104 (10)0.0212 (11)
C230.0694 (14)0.0447 (11)0.0591 (13)0.0169 (10)0.0240 (11)0.0210 (10)
C240.0693 (15)0.0609 (13)0.0585 (13)0.0197 (11)0.0097 (11)0.0312 (11)
C250.0497 (11)0.0603 (13)0.0559 (12)0.0097 (10)0.0020 (9)0.0263 (10)
C260.097 (2)0.0598 (14)0.0801 (17)0.0171 (13)0.0397 (16)0.0333 (13)
N10.0438 (9)0.0511 (9)0.0421 (9)0.0035 (7)0.0017 (7)0.0195 (7)
N20.0452 (9)0.0546 (10)0.0455 (9)0.0020 (7)0.0034 (7)0.0205 (8)
N30.0424 (9)0.0663 (12)0.0549 (11)0.0050 (8)0.0041 (8)0.0331 (9)
N40.0444 (9)0.0481 (9)0.0401 (8)0.0061 (7)0.0034 (7)0.0163 (7)
N50.0466 (10)0.0694 (12)0.0536 (10)0.0001 (8)0.0016 (8)0.0311 (9)
N60.0412 (9)0.0695 (12)0.0534 (10)0.0004 (8)0.0007 (7)0.0283 (9)
O10.0477 (9)0.0818 (12)0.0610 (10)0.0005 (8)0.0061 (7)0.0260 (9)
S10.0618 (4)0.0670 (4)0.0726 (4)0.0104 (3)0.0026 (3)0.0391 (3)
Geometric parameters (Å, º) top
C1—N11.304 (2)C13—C181.383 (3)
C1—N21.377 (3)C14—C151.376 (3)
C1—S11.750 (2)C14—H140.9300
C2—N11.386 (2)C15—C161.381 (4)
C2—C31.389 (3)C15—H150.9300
C2—C71.410 (3)C16—C171.390 (4)
C3—C41.400 (3)C16—C191.508 (4)
C3—S11.729 (2)C17—C181.377 (3)
C4—C51.363 (4)C17—H170.9300
C4—H40.9300C18—H180.9300
C5—C61.385 (4)C19—H19A0.9600
C5—H50.9300C19—H19B0.9600
C6—C71.379 (3)C19—H19C0.9600
C6—H60.9300C20—C211.383 (3)
C7—O11.363 (3)C20—C251.392 (3)
C8—O11.419 (3)C21—C221.385 (3)
C8—H8A0.9600C21—H210.9300
C8—H8B0.9600C22—C231.379 (3)
C8—H8C0.9600C22—H220.9300
C9—N21.299 (3)C23—C241.385 (3)
C9—N31.331 (2)C23—C261.506 (3)
C9—C101.503 (3)C24—C251.379 (3)
C10—N41.327 (2)C24—H240.9300
C10—C121.412 (3)C25—H250.9300
C11—N51.336 (3)C26—H26A0.9600
C11—N41.340 (2)C26—H26B0.9600
C11—C201.475 (3)C26—H26C0.9600
C12—N61.343 (3)N3—H3A0.89 (3)
C12—C131.482 (3)N3—H3B0.93 (3)
C13—C141.383 (3)N5—N61.334 (2)
N1—C1—N2128.93 (18)C15—C16—C19122.0 (3)
N1—C1—S1115.58 (15)C17—C16—C19121.0 (3)
N2—C1—S1115.49 (15)C18—C17—C16121.8 (2)
N1—C2—C3116.05 (18)C18—C17—H17119.1
N1—C2—C7124.46 (19)C16—C17—H17119.1
C3—C2—C7119.48 (19)C17—C18—C13120.3 (2)
C2—C3—C4121.5 (2)C17—C18—H18119.8
C2—C3—S1109.14 (15)C13—C18—H18119.8
C4—C3—S1129.4 (2)C16—C19—H19A109.5
C5—C4—C3117.7 (2)C16—C19—H19B109.5
C5—C4—H4121.1H19A—C19—H19B109.5
C3—C4—H4121.1C16—C19—H19C109.5
C4—C5—C6122.1 (2)H19A—C19—H19C109.5
C4—C5—H5119.0H19B—C19—H19C109.5
C6—C5—H5119.0C21—C20—C25118.3 (2)
C7—C6—C5120.7 (2)C21—C20—C11121.12 (17)
C7—C6—H6119.6C25—C20—C11120.58 (19)
C5—C6—H6119.6C20—C21—C22120.5 (2)
O1—C7—C6126.5 (2)C20—C21—H21119.8
O1—C7—C2115.05 (18)C22—C21—H21119.8
C6—C7—C2118.5 (2)C23—C22—C21121.6 (2)
O1—C8—H8A109.5C23—C22—H22119.2
O1—C8—H8B109.5C21—C22—H22119.2
H8A—C8—H8B109.5C22—C23—C24117.5 (2)
O1—C8—H8C109.5C22—C23—C26121.6 (2)
H8A—C8—H8C109.5C24—C23—C26120.8 (2)
H8B—C8—H8C109.5C25—C24—C23121.6 (2)
N2—C9—N3127.22 (18)C25—C24—H24119.2
N2—C9—C10118.00 (17)C23—C24—H24119.2
N3—C9—C10114.77 (17)C24—C25—C20120.4 (2)
N4—C10—C12120.41 (17)C24—C25—H25119.8
N4—C10—C9113.95 (16)C20—C25—H25119.8
C12—C10—C9125.54 (17)C23—C26—H26A109.5
N5—C11—N4123.82 (18)C23—C26—H26B109.5
N5—C11—C20117.49 (17)H26A—C26—H26B109.5
N4—C11—C20118.57 (17)C23—C26—H26C109.5
N6—C12—C10118.44 (18)H26A—C26—H26C109.5
N6—C12—C13113.36 (17)H26B—C26—H26C109.5
C10—C12—C13128.18 (17)C1—N1—C2110.04 (17)
C14—C13—C18118.3 (2)C9—N2—C1119.35 (17)
C14—C13—C12120.26 (19)C9—N3—H3A115.9 (17)
C18—C13—C12121.4 (2)C9—N3—H3B118.7 (16)
C15—C14—C13120.8 (2)H3A—N3—H3B125 (2)
C15—C14—H14119.6C10—N4—C11117.28 (17)
C13—C14—H14119.6N6—N5—C11118.75 (17)
C14—C15—C16121.6 (2)N5—N6—C12120.45 (17)
C14—C15—H15119.2C7—O1—C8117.1 (2)
C16—C15—H15119.2C3—S1—C189.20 (10)
C15—C16—C17117.0 (2)
N1—C2—C3—C4179.6 (2)N4—C11—C20—C2111.0 (3)
C7—C2—C3—C41.3 (4)N5—C11—C20—C2514.2 (3)
N1—C2—C3—S10.3 (2)N4—C11—C20—C25169.59 (19)
C7—C2—C3—S1179.36 (17)C25—C20—C21—C220.7 (3)
C2—C3—C4—C50.6 (4)C11—C20—C21—C22178.7 (2)
S1—C3—C4—C5179.9 (2)C20—C21—C22—C230.8 (4)
C3—C4—C5—C60.6 (4)C21—C22—C23—C241.3 (4)
C4—C5—C6—C71.1 (4)C21—C22—C23—C26178.8 (2)
C5—C6—C7—O1179.3 (2)C22—C23—C24—C250.3 (4)
C5—C6—C7—C20.5 (4)C26—C23—C24—C25179.7 (2)
N1—C2—C7—O10.7 (3)C23—C24—C25—C201.1 (4)
C3—C2—C7—O1178.3 (2)C21—C20—C25—C241.6 (3)
N1—C2—C7—C6179.7 (2)C11—C20—C25—C24177.8 (2)
C3—C2—C7—C60.7 (3)N2—C1—N1—C2179.9 (2)
N2—C9—C10—N4173.89 (18)S1—C1—N1—C20.6 (2)
N3—C9—C10—N45.3 (3)C3—C2—N1—C10.5 (3)
N2—C9—C10—C122.6 (3)C7—C2—N1—C1179.6 (2)
N3—C9—C10—C12178.2 (2)N3—C9—N2—C11.0 (3)
N4—C10—C12—N68.8 (3)C10—C9—N2—C1179.96 (18)
C9—C10—C12—N6167.53 (19)N1—C1—N2—C93.2 (4)
N4—C10—C12—C13172.7 (2)S1—C1—N2—C9176.18 (16)
C9—C10—C12—C1311.0 (3)C12—C10—N4—C113.2 (3)
N6—C12—C13—C1454.0 (3)C9—C10—N4—C11173.53 (17)
C10—C12—C13—C14124.6 (2)N5—C11—N4—C105.5 (3)
N6—C12—C13—C18122.7 (2)C20—C11—N4—C10178.55 (17)
C10—C12—C13—C1858.7 (3)N4—C11—N5—N68.4 (3)
C18—C13—C14—C152.7 (3)C20—C11—N5—N6175.61 (19)
C12—C13—C14—C15179.6 (2)C11—N5—N6—C122.2 (3)
C13—C14—C15—C162.0 (4)C10—C12—N6—N55.9 (3)
C14—C15—C16—C170.7 (4)C13—C12—N6—N5175.36 (19)
C14—C15—C16—C19179.8 (3)C6—C7—O1—C89.3 (4)
C15—C16—C17—C182.6 (4)C2—C7—O1—C8171.8 (2)
C19—C16—C17—C18178.3 (3)C2—C3—S1—C10.05 (17)
C16—C17—C18—C131.8 (4)C4—C3—S1—C1179.3 (3)
C14—C13—C18—C170.9 (4)N1—C1—S1—C30.38 (18)
C12—C13—C18—C17177.7 (2)N2—C1—S1—C3179.81 (18)
N5—C11—C20—C21165.3 (2)
Hydrogen-bond geometry (Å, º) top
Cg4 is the centroid of the C13–C18 ring.
D—H···AD—HH···AD···AD—H···A
N3—H3A···N40.89 (2)2.17 (2)2.602 (3)109 (2)
N3—H3B···N10.94 (2)1.98 (2)2.665 (3)128 (2)
C8—H8C···N5i0.962.603.532 (4)163
C17—H17···O1ii0.932.603.492 (3)161
C21—H21···N40.932.532.840 (3)100
C24—H24···Cg4iii0.932.963.796 (3)151
Symmetry codes: (i) x+1, y, z+1; (ii) x1, y, z; (iii) x, y+1, z.
Summary of short interatomic contacts (Å) top
ContactDistanceSymmetry operation
C4···S13.671 - x, -y, 1 - z
H19C···.H19C2.56-x, -y, 1 - z
O1···H172.601 + x, y, z
H18···O12.871 - x, 1 - y, 1 - z
H26C···N22.681 - x, 1 - y, -z
H8A···H3A2.532 - x, 1 - y, 1 - z
H25···H8C2.43-1 + x, y, -1 + z
H25···N62.81-x, 1 - y, -z
H26B···H42.51x, 1 + y, -1 + z
C26···C262.551 - x, 2 - y, -z
 

Acknowledgements

The authors' contributions are as follows. Conceptualization, MA and GMM; synthesis, YKS, DSK and VSG; X-ray analysis, YKS, DSK and VSG; writing (review and editing of the manuscript) NAE, MA, GMM and KIH; funding acquisition, YKS, DSK, VSG, NAE and KIH; supervision, MA and GMM.

Funding information

Funding for this research was provided by: the Ministry of Science and Higher Education of the Russian Federation, the Azerbaijan State Pedagogical University and Azerbaijan Medical University (contract No. 124020200072-0).

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