research communications\(\def\hfill{\hskip 5em}\def\hfil{\hskip 3em}\def\eqno#1{\hfil {#1}}\)

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ISSN: 2056-9890

Synthesis, structure and computational study of di­acetato­bis­­(2-amino-6-fluoro-1,3-benzo­thia­zole-κN3)zinc(II)

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aTermez Branch of Tashkent State Medical University, 64 Islom Karimov Street, Termiz 132000, Uzbekistan, bNational University of Uzbekistan named after Mirzo Ulugbek, University Street, 4, Tashkent 100174, Uzbekistan, cUzbekistan-Japan Innovation Centre of Youth, University Street 2B, Tashkent 100095, Uzbekistan, and dInstitute of Bioorganic Chemistry, Academy of Sciences of Uzbekistan, Mirzo, Ulugbek Street 83, Tashkent 100125, Uzbekistan
*Correspondence e-mail: [email protected]

Edited by T. Akitsu, Tokyo University of Science, Japan (Received 20 August 2026; accepted 1 September 2026; online 3 September 2026)

In the title zinc(II) complex, [Zn(C2H3O2)2(C7H5FN2S)2], the ZnII atom adopts a tetra­hedral coordination geometry (τ4 = 0.96), defined by two nitro­gen atoms from two neutral 2-amino-6-fluoro-1,3-benzo­thia­zole ligands and two oxygen atoms from two monodentately coordinated acetate anions. The crystal packing is governed by classical N—H⋯O hydrogen bonds, which generate one-dimensional chains extending along the [011] direction. These chains are further reinforced by bifurcated N—H⋯(O,F) hydrogen bonds together with C—H⋯π, O⋯π, and offset ππ inter­actions, resulting in a robust three-dimensional supra­molecular framework. Hirshfeld surface analysis reveals that H⋯H (31.5%), C⋯H/H⋯C (16.3%), O⋯H/H⋯O (13.0%), F⋯H/H⋯F (12.9%), and S⋯H/H⋯S (10.2%) contacts make the largest contributions to the crystal packing, while a void analysis confirms the efficient packing of the mol­ecules within the crystal.

1. Chemical context

Benzo­thia­zole derivatives constitute an important class of nitro­gen- and sulfur-containing heterocyclic compounds owing to their structural diversity, coordination versatility and broad spectrum of biological and physicochemical properties (Keri et al., 2015View full citation). The presence of nitro­gen and sulfur donor atoms within the fused aromatic framework provides favourable coordination sites for transition-metal ions, while substitution on the benzene ring enables systematic modulation of the electronic properties, mol­ecular polarity and inter­molecular inter­actions of the ligand. Consequently, substituted benzo­thia­zoles have attracted considerable attention in coordination chemistry, crystal engineering and medicinal chemistry (Barbarossa et al., 2023View full citation).

Particular inter­est has been devoted to 2-amino­benzo­thia­zole derivatives because the heterocyclic nitro­gen atom readily coordinates to metal centres, whereas the exocyclic amino group usually remains non-coordinated and serves as an efficient hydrogen-bond donor. This dual functionality facilitates the formation of coordination compounds together with extended supra­molecular architectures sustained by classical and non-classical inter­molecular inter­actions. Previous structural investigations have demonstrated that ZnII complexes containing 2-amino­benzo­thia­zole predominantly exhibit tetra­hedral coordination environments in which the ligand binds through the ring nitro­gen atom rather than the amino N atom (Davarski et al., 1996View full citation; Kim & Kang, 2012View full citation; Suh et al., 2009View full citation).

Fluorinated benzo­thia­zole derivatives are considered particularly promising because fluorine substitution modifies the electronic distribution of the aromatic system without introducing significant steric effects. The strong electron-withdrawing character of fluorine influences the donor ability of the coordinating nitro­gen atom and frequently contributes to crystal stabilization through weak inter­molecular contacts, including N—H⋯F and C—H⋯F inter­actions. In addition, fluorination affects the π-electron density of the aromatic framework, thereby influencing aromatic stacking and other non-covalent inter­actions responsible for crystal packing (Li et al., 2013View full citation; Kumar et al., 2017View full citation).

The mol­ecular structure of free 2-amino-6-fluoro-1,3-benzo­thia­zole has previously shown that fluorine substitution preserves the near-planarity of the benzo­thia­zole skeleton while allowing the formation of an extensive hydrogen-bonding network in the crystal. Such structural characteristics indicate that this ligand is well suited for the construction of coordination compounds in which both coordination and supra­molecular inter­actions contribute to the overall crystal architecture (Jai-nhuknan et al., 1997aView full citation,bView full citation).

Mixed-ligand ZnII complexes containing nitro­gen-donor heterocycles and carboxyl­ate ligands have been widely investigated because of their structural diversity and their ability to generate robust supra­molecular assemblies through hydrogen bonding and aromatic inter­actions. In many cases, acetate anions coordinate in a monodentate manner, leaving the second oxygen atom available for inter­molecular hydrogen bonding, which plays an essential role in directing crystal packing (Guo et al., 2011View full citation). Moreover, benzo­thia­zole-based ZnII complexes have attracted increasing attention owing to their potential biological activity and favourable structural characteristics arising from the combination of rigid aromatic ligands and flexible coordination environments (Babu et al., 2015View full citation; Reddy et al., 2014View full citation).

[Scheme 1]

Motivated by these considerations, 2-amino-6-fluoro-1,3-benzo­thia­zole was selected as a ligand combining a rigid aromatic framework, a strong nitro­gen donor atom, an amino group capable of forming inter­molecular hydrogen bonds and a fluorine substituent expected to influence crystal packing. Zinc acetate was employed as the metal precursor because acetate ions readily adopt monodentate coordination while simultaneously providing additional hydrogen-bond acceptor sites. As part of our continuing studies on coordination compounds of substituted benzo­thia­zoles, the title compound, [Zn(C2H3O2)2(C7H5FN2S)2], (I)[link], was synthesized and its crystal structure, supra­molecular organization, Hirshfeld surface and crystal void distribution were investigated.

2. Structural commentary

The asymmetric unit of (I)[link] comprises one independent neutral complex mol­ecule (Fig. 1[link]). The title compound crystallizes in the non-centrosymmetric Sohncke space group Pna21. The refined Flack parameter of 0.002 (12) confirms that the absolute structure has been reliably established. The ZnII centre is coordinated by two nitro­gen atoms from two 2-amino-6-fluoro-1,3-benzo­thia­zole (AFBT) ligands and two oxygen atoms from two acetate (ac) anions, giving a four-coordinate ZnN2O2 environment.

[Figure 1]
Figure 1
Mol­ecular structure of the title compound, showing the atom-numbering scheme. Displacement ellipsoids are drawn at the 40% probability level.

The AFBT ligands coordinate exclusively through the endocyclic nitro­gen atoms of the thia­zole rings, whereas both ac anions adopt a monodentate coordination mode. The Zn—O and Zn—N bond lengths (Table 1[link]) are consistent with those reported for structurally related ZnII complexes containing 2-amino­benzo­thia­zole derivatives, in which the Zn—N and Zn—O bond distances generally fall within the ranges 2.02–2.05 and 1.94–1.98 Å, respectively (Tojiboyeva et al., 2025View full citation; Kim & Kang, 2012View full citation; Kim et al., 2009View full citation).

Table 1
Selected geometric parameters (Å, °)

Zn1—O1 1.977 (3) O1—C15 1.272 (5)
Zn1—O3 1.954 (2) O3—C17 1.270 (4)
Zn1—N1 2.038 (3) O4—C17 1.224 (5)
Zn1—N3 2.045 (3) O2—C15 1.262 (5)
       
O3—Zn1—O1 119.78 (12) N3—Zn1—O1 112.87 (11)
N1—Zn1—O1 104.15 (12) N3—Zn1—O3 102.93 (10)
N1—Zn1—O3 109.13 (11) N3—Zn1—N1 107.53 (11)

The coordination geometry around the ZnII centre is best described as a slightly distorted tetra­hedron. Qu­anti­tative evaluation using the four-coordinate geometry index τ4 proposed by Yang et al., 2007View full citation, defined as τ4 = [360 − (α + β)]/141, where α and β are the two largest coordination angles, gives a value of 0.96, indicating a tetra­hedral geometry. The slight distortion from the ideal tetra­hedron arises from the different donor characteristics of the nitro­gen and oxygen atoms together with the spatial arrangement of the AFBT and ac ligands.

Although the ac anions coordinate in a monodentate fashion, short secondary contacts of Zn1⋯O2 = 2.674 (3) Å and Zn1⋯O4 = 2.819 (4) Å are observed. These separations are significantly longer than normal Zn—O coordination bonds and therefore cannot be regarded as additional coordination inter­actions. Nevertheless, they indicate the presence of weak secondary intra­molecular Zn⋯O contacts, reflecting the spatial organization of the coordination environment.

Both AFBT ligands remain essentially planar after coordination. The root-mean-square (r.m.s.) deviations from the least-squares planes are 0.019 and 0.020 Å, confirming that the π-conjugated benzo­thia­zole framework is well preserved upon coordination. Furthermore, the geometry of the coordinated ligands closely resembles that of the free AFBT mol­ecule, indicating that coordination to the ZnII centre has little influence on the mol­ecular structure of the heterocyclic fragment (Jai-nhuknan et al., 1997aView full citation,bView full citation).

The ac groups exhibit the characteristic asymmetry of the C—O bond lengths expected for monodentate carboxyl­ate ligands. Coordination occurs through only one oxygen atom of each ac anion, while the second oxygen atom remains uncoordinated, resulting in the observed differentiation of the C—O bond lengths.

3. Supra­molecular features

The crystal packing is governed by a combination of classical hydrogen bonds and weaker non-covalent inter­actions, which collectively generate a robust three-dimensional supra­molecular architecture (Fig. 2[link]). The principal contribution to the crystal packing arises from classical N—H⋯O hydrogen bonds formed between the amino groups of the AFBT ligands and the non-coordinating oxygen atoms of the ac anions (Table 2[link]). In particular, the N2—H2B⋯O4 and N4—H4B⋯O2 hydrogen bonds link adjacent mol­ecules into infinite chains propagating along the [011] direction.

Table 2
Hydrogen-bond geometry (Å, °)

Cg1 and Cg6 are the centroids of the Zn1/O1/C15/O2 and S1/N1/C1–C7 rings, respectively.

D—H⋯A D—H H⋯A DA D—H⋯A
N2—H2B⋯O4i 0.86 (1) 1.97 (1) 2.806 (5) 162 (1)
N4—H4B⋯F2ii 0.86 (1) 2.44 (1) 2.910 (6) 115 (1)
N4—H4B⋯O2iii 0.86 (1) 2.07 (1) 2.890 (4) 160 (1)
C18—H18B⋯Cg6iv 0.96 (2) 2.97 (2) 3.565 (5) 121 (1)
C17—O4⋯Cg1 1.22 (1) 3.08 (1) 3.234 (4) 86 (1)
Symmetry codes: (i) Mathematical equation; (ii) Mathematical equation; (iii) Mathematical equation; (iv) Mathematical equation.
[Figure 2]
Figure 2
Crystal packing of the title compound viewed along the [011] direction, showing the network of N—H⋯O and N—H⋯F hydrogen bonds. Hydrogen bonds are shown as dashed lines.

Besides forming classical hydrogen bonds, atom N4 also participates in a bifurcated hydrogen bond, where hydrogen atom H4B simultaneously inter­acts with atoms O2 and F2. The N4—H4B⋯F2 contact is considerably weaker than the corresponding N—H⋯O hydrogen bond; however, it plays an important structure-directing role. Although fluorine is generally regarded as a weak hydrogen-bond acceptor, the N—H⋯F inter­action links adjacent hydrogen-bonded chains and reinforces the overall supra­molecular framework. Thus, the fluorine substituents do not constitute the primary packing motif but act as secondary acceptors that enhance the connectivity and stability of the crystal structure.

The crystal packing is further reinforced by weak C—H⋯π and O⋯π inter­actions. The methyl group of the ac ligand forms a C18—H18BCg6 contact, where Cg6 is the centroid of the benzo­thia­zole ring system (S1/C1/N1/C2/C3/C4/C5/C6/C7). The corresponding geometric parameters are H18BCg6 = 2.972 (19) Å, C18⋯Cg6 = 3.565 (5) Å and C18—H18BCg6 = 121.1 (13)°, which are typical of weak but significant C—H⋯π inter­actions. In addition, the carbonyl oxygen atom O4 is involved in an O⋯π inter­action with the centroid Cg1 of the coordination plane (Zn1/O1/C15/O2), with an O4⋯Cg1 separation of 3.075 (4) Å (Fig. 3[link]). Although individually weak, these contacts complement the hydrogen-bonding network and contribute to the efficient packing of the mol­ecules within the crystal.

[Figure 3]
Figure 3
View of the π-related inter­molecular inter­actions in the crystal structure of the title compound, showing the offset ππ stacking inter­action (Cg1⋯Cg3), the C18—H18BCg6 C—H⋯π inter­action, and the C17—O4⋯Cg1 O⋯π contact. Selected inter­actions are shown as dashed lines.

A further characteristic feature of the crystal structure is the presence of a ππ inter­action between centroids Cg1 and Cg3, where Cg3 corresponds to the thia­zole ring (S2/C8/N3/C9/C14). The centroid-to-centroid distance of 3.7559 (19) Å falls within the range typically associated with offset ππ stacking inter­actions. This arrangement promotes favourable overlap of the π-electron systems while minimizing steric repulsion, thereby providing additional stabilization to the crystal packing.

4. Hirshfeld surface

To obtain a deeper insight into the inter­molecular inter­actions governing the crystal packing, a Hirshfeld surface analysis was carried out using CrystalExplorer21.5 (Spackman et al., 2021View full citation). The Hirshfeld surface mapped over dnorm is shown in Fig. 4[link]. The Hirshfeld surface has a total area of 444.97 Å2 and an enclosed volume of 517.52 Å3. The most intense red regions on the dnorm surface are localized around the non-coordinating oxygen atoms of the ac ligands and the amino groups of the benzo­thia­zole mol­ecules, corresponding to the shortest inter­molecular N—H⋯O hydrogen bonds identified in the crystal structure. Less pronounced red spots are observed around the fluorine atoms, confirming their involvement in weaker N—H⋯F inter­actions that complement the classical hydrogen-bonding network.

[Figure 4]
Figure 4
Hirshfeld surface of the title compound mapped over dnorm, showing the inter­molecular contacts responsible for the crystal packing.

The two-dimensional fingerprint plots reveal that H⋯H contacts make the largest contribution to the Hirshfeld surface, accounting for 31.5% of the total surface area (Fig. 5[link]). This predominance is characteristic of hydrogen-rich mol­ecular crystals and mainly reflects the close packing of neighbouring mol­ecules. The second-largest contribution arises from C⋯H/H⋯C contacts (16.3%), which are associated primarily with the C—H⋯π inter­actions between the acetate methyl groups and the aromatic benzo­thia­zole fragments. Although individually weak, these inter­actions contribute significantly to the stabilization of the crystal packing.

[Figure 5]
Figure 5
Two-dimensional fingerprint plots of the title compound showing the overall contacts and the individual contributions of H⋯H, C⋯H/H⋯C, O⋯H/H⋯O, F⋯H/H⋯F and S⋯H/H⋯S inter­actions to the Hirshfeld surface.

The O⋯H/H⋯O contacts contribute 13.0% to the Hirshfeld surface and are directly associated with the classical N—H⋯O hydrogen bonds forming the principal supra­molecular framework. Their characteristic sharp spikes on the fingerprint plots indicate the presence of strong directional hydrogen bonds. A comparable contribution is observed for F⋯H/H⋯F contacts (12.9%), demonstrating that the fluorine substituents participate actively in the inter­molecular inter­action network. Although fluorine is generally considered a weak hydrogen-bond acceptor, its involvement in the bifurcated N—H⋯(O,F) hydrogen bond highlights its important auxiliary role in reinforcing the hydrogen-bonded framework generated by the stronger N—H⋯O inter­actions.

The contribution of S⋯H/H⋯S contacts reaches 10.2%, reflecting numerous van der Waals contacts involving the sulfur atoms of the benzo­thia­zole rings. The remaining inter­actions make considerably smaller contributions, including S⋯C/C⋯S (3.5%), C⋯C (2.6%), C⋯F/F⋯C (2.5%), O⋯S/S⋯O (1.9%), F⋯N/N⋯F (1.5%), F⋯O/O⋯F (1.3%), N⋯H/H⋯N and F⋯S/S⋯F (each 1.0%), N⋯S/S⋯N (0.6%), and C⋯N/N⋯C, C⋯O/O⋯C, and F⋯F (each 0.1%). Although individually insignificant, these weak contacts collectively contribute to the overall stabilization of the crystal packing.

5. Database survey

A search of the Cambridge Structural Database (CSD, Version 2026.2.0; Groom et al., 2016View full citation) revealed only three structurally related transition-metal complexes containing benzo­thia­zole-based ligands. Two entries, NOGZUG and NOHBAP (Sahoo et al., 2014View full citation), are CuII complexes featuring cyclo­metallated imidazolidine–benzo­thia­zole ligands, while QAYKOU (Akhter et al., 2022View full citation) is a RuII η6-p-cymene complex containing an amino­benzo­thia­zole derivative. All of these structures differ significantly from the title compound in both coordination mode and metal coordination geometry. To the best of our knowledge, no closely related ZnII complex containing two neutral AFBT ligands together with two monodentately coordinated acetate anions has previously been reported.

6. Synthesis and crystallization

The following solutions were prepared: (a) an ethano­lic solution of a Zn(CH3COO)2·4H2O (1.0 mmol) and (b) an ethano­lic solution of AFBT (2.0 mmol). Solution (a) was added to solution (b), and the resulting mixture was stirred at room tem­per­ature for 12 h using magnetic stirring. A crystalline precipitate was formed, filtered off, washed several times with ethanol and dried in air. Since the obtained material was readily soluble in di­methyl­formamide (DMF), it was recrystallized from this solvent. No poor solvent was used to induce crystallization; instead, the product precipitated directly from the ethano­lic reaction mixture because of its limited solubility in ethanol, yielding well-formed whitish single crystals suitable for X-ray diffraction analysis and further physicochemical investigations. The reaction scheme is shown in Fig. 6[link].

[Figure 6]
Figure 6
Reaction scheme.

7. Refinement

Crystal data, data collection and structure refinement details are summarized in Table 3[link]. All non-hydrogen atoms were refined anisotropically. Hydrogen atoms bonded to carbon atoms were positioned geometrically and refined using a riding model with C—H = 0.93–0.96 Å and Uiso(H) = 1.2Ueq(C) for aromatic carbon atoms and 1.5Ueq(C) for methyl groups. Hydrogen atoms attached to nitro­gen atoms were located from difference-Fourier maps and refined with restrained N—H distances of 0.86 Å, with Uiso(H) = 1.2Ueq(N).

Table 3
Experimental details

Crystal data
Chemical formula [Zn(C2H3O2)2(C7H5FN2S)2]
Mr 519.88
Crystal system, space group Orthorhombic, Pna21
Temperature (K) 273
a, b, c (Å) 8.26379 (13), 27.6342 (3), 9.21400 (12)
V3) 2104.14 (5)
Z 4
Radiation type Cu Kα
μ (mm−1) 3.95
Crystal size (mm) 0.37 × 0.28 × 0.25
 
Data collection
Diffractometer XtaLAB Synergy, Single source at home/near, HyPix3000
Absorption correction Multi-scan (CrysAlis PRO; Rigaku OD, 2023View full citation)
Tmin, Tmax 0.336, 1.000
No. of measured, independent and observed [I ≥ 2σ(I)] reflections 19982, 4036, 3829
Rint 0.063
(sin θ/λ)max−1) 0.616
 
Refinement
R[F2 > 2σ(F2)], wR(F2), S 0.040, 0.113, 1.03
No. of reflections 4036
No. of parameters 282
No. of restraints 1
H-atom treatment H-atom parameters constrained
Δρmax, Δρmin (e Å−3) 0.38, −0.60
Absolute structure Hooft et al. (2010View full citation)
Absolute structure parameter 0.002 (12)
Computer programs: CrysAlis PRO (Rigaku OD, 2023View full citation), SHELXT (Sheldrick, 2015View full citation), OLEX2.refine (Bourhis et al., 2015View full citation) and OLEX2 (Dolomanov et al., 2009View full citation).

Supporting information


Computing details top

Diacetatobis(2-amino-6-fluoro-1,3-benzothiazole-κN3)zinc(II) top
Crystal data top
[Zn(C2H3O2)2(C7H5FN2S)2]Dx = 1.641 Mg m3
Mr = 519.88Cu Kα radiation, λ = 1.54184 Å
Orthorhombic, Pna21Cell parameters from 4970 reflections
a = 8.26379 (13) Åθ = 3.7–71.1°
b = 27.6342 (3) ŵ = 3.95 mm1
c = 9.21400 (12) ÅT = 273 K
V = 2104.14 (5) Å3Rhombohedral, clear whiteish colourless
Z = 40.37 × 0.28 × 0.25 mm
F(000) = 1055.915
Data collection top
XtaLAB Synergy, Single source at home/near, HyPix3000
diffractometer
3829 reflections with I 2σ(I)
ω scansRint = 0.063
Absorption correction: multi-scan
(CrysAlisPro; Rigaku OD, 2023)
θmax = 71.7°, θmin = 3.2°
Tmin = 0.336, Tmax = 1.000h = 1010
19982 measured reflectionsk = 3326
4036 independent reflectionsl = 1111
Refinement top
Refinement on F2Primary atom site location: dual
Least-squares matrix: fullH-atom parameters constrained
R[F2 > 2σ(F2)] = 0.040 w = 1/[σ2(Fo2) + (0.0835P)2]
where P = (Fo2 + 2Fc2)/3
wR(F2) = 0.113(Δ/σ)max = 0.001
S = 1.03Δρmax = 0.38 e Å3
4036 reflectionsΔρmin = 0.59 e Å3
282 parametersAbsolute structure: Hooft et al. (2010)
1 restraintAbsolute structure parameter: 0.002 (12)
26 constraints
Special details top

Refinement. The structure was solved by direct methods and refined by full-matrix least-squares on F2.

Fractional atomic coordinates and isotropic or equivalent isotropic displacement parameters (Å2) top
xyzUiso*/Ueq
Zn10.63340 (5)0.623334 (12)0.39621 (5)0.03898 (13)
S20.72351 (14)0.77996 (3)0.52443 (10)0.0590 (3)
S10.72502 (15)0.48713 (3)0.66695 (11)0.0644 (3)
O10.3990 (3)0.61134 (9)0.3732 (3)0.0533 (6)
O30.7725 (3)0.62617 (8)0.2249 (3)0.0451 (5)
N10.7101 (4)0.56872 (9)0.5279 (3)0.0432 (6)
N30.6824 (3)0.68720 (9)0.4992 (3)0.0392 (5)
F11.2953 (4)0.54886 (14)0.8032 (4)0.0932 (9)
F20.4525 (8)0.75495 (15)1.0179 (4)0.1439 (19)
O40.6401 (4)0.56292 (12)0.1497 (5)0.0902 (13)
O20.4259 (4)0.67805 (10)0.2456 (3)0.0654 (7)
N20.4771 (4)0.52090 (11)0.5138 (4)0.0626 (9)
H2a0.4271 (4)0.54166 (11)0.4607 (4)0.0751 (11)*
H2b0.4299 (4)0.49437 (11)0.5382 (4)0.0751 (11)*
N40.8032 (4)0.72560 (10)0.2979 (4)0.0555 (8)
H4a0.8114 (4)0.69899 (10)0.2500 (4)0.0667 (10)*
H4b0.8368 (4)0.75225 (10)0.2603 (4)0.0667 (10)*
C170.7393 (4)0.59503 (13)0.1281 (4)0.0479 (8)
C80.7392 (4)0.72552 (10)0.4282 (4)0.0419 (7)
C90.6236 (4)0.69968 (13)0.6361 (4)0.0452 (7)
C20.8639 (4)0.56674 (12)0.5905 (4)0.0472 (8)
C160.1759 (6)0.6390 (2)0.2183 (7)0.0813 (16)
H16a0.114 (2)0.6150 (14)0.269 (4)0.122 (2)*
H16b0.123 (3)0.6698 (6)0.226 (5)0.122 (2)*
H16c0.1849 (6)0.6301 (19)0.1179 (16)0.122 (2)*
C150.3419 (4)0.64213 (12)0.2842 (4)0.0474 (7)
C51.1534 (5)0.5536 (2)0.7335 (5)0.0662 (11)
C140.6342 (5)0.74928 (14)0.6671 (5)0.0546 (9)
C41.1284 (5)0.5957 (2)0.6536 (6)0.0689 (12)
H41.2085 (5)0.6192 (2)0.6478 (6)0.0827 (14)*
C30.9818 (5)0.60183 (15)0.5827 (5)0.0595 (10)
H30.9630 (5)0.62987 (15)0.5295 (5)0.0714 (11)*
C70.8947 (5)0.52462 (13)0.6702 (4)0.0544 (9)
C110.5019 (7)0.6876 (2)0.8684 (5)0.0823 (15)
H110.4590 (7)0.6673 (2)0.9391 (5)0.0987 (18)*
C100.5564 (5)0.66893 (14)0.7380 (5)0.0588 (9)
H100.5480 (5)0.63597 (14)0.7190 (5)0.0705 (11)*
C10.6246 (4)0.52965 (12)0.5575 (4)0.0463 (8)
C120.5122 (8)0.7365 (2)0.8919 (6)0.0893 (16)
C61.0398 (6)0.51766 (16)0.7425 (5)0.0659 (11)
H61.0594 (6)0.48958 (16)0.7953 (5)0.0791 (14)*
C130.5779 (8)0.76845 (16)0.7965 (5)0.0783 (14)
H130.5848 (8)0.80134 (16)0.8171 (5)0.0940 (17)*
C180.8288 (7)0.5981 (3)0.0116 (5)0.0884 (17)
H18a0.925 (3)0.5785 (14)0.0062 (19)0.133 (2)*
H18b0.761 (2)0.5866 (17)0.0889 (9)0.133 (2)*
H18c0.859 (5)0.6311 (4)0.030 (3)0.133 (2)*
Atomic displacement parameters (Å2) top
U11U22U33U12U13U23
Zn10.0520 (2)0.02471 (19)0.0402 (2)0.00300 (13)0.0056 (2)0.00357 (17)
S20.0945 (7)0.0323 (4)0.0502 (5)0.0112 (4)0.0182 (5)0.0093 (3)
S10.0973 (7)0.0342 (4)0.0616 (5)0.0019 (4)0.0018 (6)0.0195 (4)
O10.0536 (12)0.0375 (11)0.0689 (19)0.0022 (9)0.0021 (13)0.0025 (12)
O30.0573 (13)0.0375 (12)0.0404 (12)0.0056 (9)0.0056 (10)0.0060 (9)
N10.0580 (16)0.0279 (12)0.0437 (14)0.0009 (11)0.0044 (12)0.0064 (11)
N30.0520 (14)0.0313 (11)0.0343 (12)0.0046 (10)0.0064 (11)0.0016 (10)
F10.0766 (17)0.121 (3)0.0819 (19)0.0238 (17)0.0143 (16)0.020 (2)
F20.257 (5)0.100 (3)0.075 (2)0.020 (3)0.092 (3)0.0093 (19)
O40.104 (3)0.0625 (19)0.104 (3)0.0374 (18)0.022 (2)0.043 (2)
O20.0765 (18)0.0472 (14)0.0725 (19)0.0039 (13)0.0058 (17)0.0103 (13)
N20.078 (2)0.0347 (13)0.075 (2)0.0137 (14)0.0018 (19)0.0155 (15)
N40.091 (2)0.0297 (12)0.0464 (16)0.0151 (14)0.0216 (17)0.0044 (12)
C170.0562 (19)0.0389 (16)0.0485 (18)0.0035 (13)0.0039 (15)0.0134 (14)
C80.0596 (18)0.0242 (13)0.0418 (18)0.0048 (11)0.0059 (13)0.0026 (11)
C90.059 (2)0.0412 (16)0.0354 (16)0.0011 (13)0.0044 (14)0.0006 (13)
C20.068 (2)0.0344 (16)0.0388 (17)0.0100 (13)0.0079 (14)0.0065 (13)
C160.056 (2)0.081 (3)0.108 (4)0.006 (2)0.011 (3)0.039 (3)
C150.0567 (18)0.0388 (17)0.0466 (18)0.0095 (14)0.0070 (15)0.0027 (15)
C50.064 (2)0.084 (3)0.050 (2)0.018 (2)0.0005 (19)0.012 (2)
C140.074 (3)0.0451 (19)0.044 (2)0.0015 (16)0.0128 (17)0.0036 (16)
C40.059 (2)0.079 (3)0.069 (3)0.0004 (19)0.005 (2)0.015 (3)
C30.063 (2)0.0509 (19)0.065 (2)0.0026 (16)0.0052 (18)0.0197 (18)
C70.084 (2)0.0404 (17)0.0386 (18)0.0153 (16)0.0086 (17)0.0085 (15)
C110.118 (4)0.078 (3)0.051 (3)0.007 (3)0.032 (3)0.018 (2)
C100.076 (3)0.0508 (19)0.0498 (19)0.0034 (18)0.0124 (19)0.0103 (16)
C10.068 (2)0.0300 (15)0.0408 (17)0.0015 (13)0.0076 (15)0.0037 (13)
C120.136 (5)0.081 (3)0.051 (2)0.017 (3)0.029 (3)0.011 (3)
C60.086 (3)0.062 (2)0.049 (2)0.027 (2)0.005 (2)0.0136 (18)
C130.132 (4)0.054 (2)0.049 (2)0.008 (3)0.026 (3)0.0112 (19)
C180.101 (4)0.116 (5)0.048 (2)0.002 (4)0.013 (3)0.025 (3)
Geometric parameters (Å, º) top
Zn1—O11.977 (3)C9—C141.403 (5)
Zn1—O31.954 (2)C9—C101.383 (5)
Zn1—N12.038 (3)C2—C31.377 (5)
Zn1—N32.045 (3)C2—C71.399 (5)
S2—C81.751 (3)C16—H16a0.9600
S2—C141.729 (4)C16—H16b0.9600
S1—C71.744 (4)C16—H16c0.9600
S1—C11.757 (4)C16—C151.503 (6)
O1—C151.272 (5)C5—C41.392 (7)
O3—C171.270 (4)C5—C61.369 (7)
N1—C21.397 (5)C14—C131.386 (6)
N1—C11.319 (4)C4—H40.9300
N3—C81.330 (4)C4—C31.387 (6)
N3—C91.395 (4)C3—H30.9300
F1—C51.343 (5)C7—C61.386 (6)
F2—C121.361 (6)C11—H110.9300
O4—C171.224 (5)C11—C101.383 (6)
O2—C151.262 (5)C11—C121.371 (8)
N2—H2a0.8600C10—H100.9300
N2—H2b0.8600C12—C131.358 (8)
N2—C11.306 (5)C6—H60.9300
N4—H4a0.8600C13—H130.9300
N4—H4b0.8600C18—H18a0.9600
N4—C81.312 (5)C18—H18b0.9600
C17—C181.487 (6)C18—H18c0.9600
Cg1···Cg33.7559 (19)
O3—Zn1—O1119.78 (12)C16—C15—O1124.1 (4)
N1—Zn1—O1104.15 (12)C16—C15—O2115.7 (4)
N1—Zn1—O3109.13 (11)C4—C5—F1117.6 (5)
N3—Zn1—O1112.87 (11)C6—C5—F1119.9 (4)
N3—Zn1—O3102.93 (10)C6—C5—C4122.4 (4)
N3—Zn1—N1107.53 (11)C9—C14—S2110.5 (3)
C14—S2—C889.73 (17)C13—C14—S2127.6 (3)
C1—S1—C789.56 (17)C13—C14—C9121.9 (4)
C15—O1—Zn1108.7 (2)H4—C4—C5120.6 (3)
C17—O3—Zn1114.4 (2)C3—C4—C5118.8 (4)
C2—N1—Zn1123.9 (2)C3—C4—H4120.6 (3)
C1—N1—Zn1124.3 (2)C4—C3—C2120.5 (4)
C1—N1—C2111.7 (3)H3—C3—C2119.8 (2)
C8—N3—Zn1121.9 (2)H3—C3—C4119.8 (3)
C9—N3—Zn1124.3 (2)C2—C7—S1109.8 (3)
C9—N3—C8111.8 (3)C6—C7—S1128.4 (3)
H2b—N2—H2a120.0C6—C7—C2121.7 (4)
C1—N2—H2a120.0C10—C11—H11120.5 (3)
C1—N2—H2b120.0C12—C11—H11120.5 (3)
H4b—N4—H4a120.0C12—C11—C10119.0 (4)
C8—N4—H4a120.0C11—C10—C9119.4 (4)
C8—N4—H4b120.0H10—C10—C9120.3 (2)
O4—C17—O3121.5 (4)H10—C10—C11120.3 (3)
C18—C17—O3117.5 (4)N1—C1—S1114.4 (3)
C18—C17—O4121.0 (4)N2—C1—S1119.6 (3)
N3—C8—S2114.1 (2)N2—C1—N1126.0 (3)
N4—C8—S2119.5 (2)C11—C12—F2118.8 (5)
N4—C8—N3126.4 (3)C13—C12—F2117.0 (5)
C14—C9—N3113.8 (3)C13—C12—C11124.3 (4)
C10—C9—N3127.0 (3)C7—C6—C5117.6 (4)
C10—C9—C14119.2 (3)H6—C6—C5121.2 (2)
C3—C2—N1126.5 (3)H6—C6—C7121.2 (2)
C7—C2—N1114.5 (3)C12—C13—C14116.3 (4)
C7—C2—C3119.0 (4)H13—C13—C14121.9 (3)
H16b—C16—H16a109.5H13—C13—C12121.9 (3)
H16c—C16—H16a109.5H18a—C18—C17109.5
H16c—C16—H16b109.5H18b—C18—C17109.5
C15—C16—H16a109.5H18b—C18—H18a109.5
C15—C16—H16b109.5H18c—C18—C17109.5
C15—C16—H16c109.5H18c—C18—H18a109.5
O2—C15—O1120.2 (4)H18c—C18—H18b109.5
Zn1—O1—C15—O211.6 (3)F1—C5—C6—C7179.2 (4)
Zn1—O1—C15—C16168.2 (3)F2—C12—C11—C10177.4 (6)
Zn1—O3—C17—O47.8 (3)F2—C12—C13—C14178.3 (6)
Zn1—O3—C17—C18174.0 (3)N2—C1—S1—C7179.5 (3)
Zn1—N1—C2—C34.9 (4)N2—C1—N1—C2179.7 (4)
Zn1—N1—C2—C7176.3 (3)N4—C8—S2—C14179.6 (4)
Zn1—N1—C1—S1176.9 (2)N4—C8—N3—C9179.6 (4)
Zn1—N1—C1—N23.4 (3)C8—S2—C14—C91.1 (2)
Zn1—N3—C8—S2164.4 (2)C8—S2—C14—C13178.8 (4)
Zn1—N3—C8—N415.8 (3)C8—N3—C9—C141.1 (3)
Zn1—N3—C9—C14163.0 (3)C8—N3—C9—C10180.0 (3)
Zn1—N3—C9—C1015.9 (4)C9—C14—C13—C120.1 (5)
S2—C8—N3—C90.2 (3)C9—C10—C11—C121.6 (6)
S2—C14—C9—N31.5 (3)C2—C3—C4—C50.5 (5)
S2—C14—C9—C10179.5 (3)C2—C7—S1—C10.7 (3)
S2—C14—C13—C12180.0 (6)C2—C7—C6—C50.0 (4)
S1—C7—C2—N10.5 (3)C14—C9—C10—C110.3 (5)
S1—C7—C2—C3178.4 (3)C14—C13—C12—C111.3 (8)
S1—C7—C6—C5177.2 (4)C4—C5—C6—C71.0 (6)
S1—C1—N1—C20.7 (3)C4—C3—C2—C70.5 (5)
N1—C2—C3—C4178.3 (4)C3—C2—N1—C1178.9 (4)
N1—C2—C7—C6178.1 (3)C3—C2—C7—C60.7 (4)
N1—C1—S1—C70.8 (3)C3—C4—C5—C61.2 (6)
N3—C8—S2—C140.5 (3)C7—C2—N1—C10.1 (4)
N3—C9—C14—C13178.4 (4)C10—C9—C14—C130.6 (5)
N3—C9—C10—C11179.2 (5)C10—C11—C12—C132.3 (7)
F1—C5—C4—C3178.9 (4)C1—S1—C7—C6178.1 (3)
Hydrogen-bond geometry (Å, º) top
Cg1 and Cg6 are the centroids of the Zn1/O1/C15/O2 and S1/N1/C1–C7 rings, respectively.
D—H···AD—HH···AD···AD—H···A
N2—H2B···O4i0.86 (1)1.97 (1)2.806 (5)162 (1)
N4—H4B···F2ii0.86 (1)2.44 (1)2.910 (6)115 (1)
N4—H4B···O2iii0.86 (1)2.07 (1)2.890 (4)160 (1)
C18—H18B···Cg6iv0.96 (2)2.97 (2)3.565 (5)121 (1)
C17—O4···Cg11.22 (1)3.08 (1)3.234 (4)86 (1)
Symmetry codes: (i) x+1, y+1, z+1/2; (ii) x+1/2, y+3/2, z1; (iii) x+1/2, y+3/2, z; (iv) x, y, z1.
 

Acknowledgements

The authors thank the Institute of Bioorganic Chemistry of the Academy of Sciences of Uzbekistan for providing access to the XtaLAB Synergy-S X-ray diffractometer. They also acknowledge the Uzbek-Japan Innovation Center of Youth for providing access to the analytical instrumentation and research facilities used in this work.

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