early career research
Bis(diallylcarbamodithioato)(quinaldine)zinc(II)
aC. D. Nenitzescu Institute of Organic and Supramolecular Chemistry, Romanian Academy, 202B Splaiul Independentei, 060023 Bucharest, Romania, and bDepartment of Inorganic Polymers, Petru Poni Institute of Macromolecular Chemistry, Aleea Grigore Ghica Voda nr. 41A, 700487 Iasi, Romania
*Correspondence e-mail: [email protected], [email protected]
This article is part of the collection Early Career Scientists in Structural Science.
The of the title compound {systematic name: [bis(prop-2-en-1-yl)carbamodithioato-κ2S,S′](2-methylquinoline-κN)zinc(II)}, [Zn(C7H10NS2)2(C10H9N)] the heteroleptic complex reveals supramolecular dimers established by π–π interactions between adjacent quinaldine units with a centroid–centroid distance of 3.672 (2) Å. The compound crystallizes in the triclinic P1, with the ZnII atom exhibiting a trigonal–bipyramidal geometry.
Keywords: crystal structure; zinc; 2-methylquinoline; diallylcarbamodithioate; quinaldine.
CCDC reference: 2556564
1. Chemical context
Metal complexes of dithiocarbamate and its substituted derivatives are known for their diverse catalytic functions and promising biological activities (Thammakan & Somsook, 2006
). Among dithiocarbamate complexes, zinc(II) derivatives have received considerable attention as antioxidant additives for plastics and hydrocarbon-based lubricants, with studies examining their mechanisms of action (Ali et al., 2006
). Moreover, quinaldine is a versatile intermediate for the synthesis of pharmaceuticals, dyes, agrochemicals, and fine chemicals (Matada et al., 2021
). Its derivatives often display biological activities, including antimicrobial, anti-inflammatory, and anticancer potential, making them valuable targets in medicinal chemistry research (Yadav & Shah, 2021
). Numerous structurally characterized zinc(II) dithiocarbamate complexes containing N-heterocyclic ligands have been reported in the literature; however, no analogous complex incorporating quinaldine has been described to date (Reck & Becker, 2004a
). Here we describe the crystal structure of a mononuclear heteroleptic ZnII complex bearing diallyldithiocarbamate (L−) and 2-methylquinoline (Qy) ligands (1).
2. Structural commentary
Although ZnII is stereochemically a labile ion and its coordination chemistry is therefore governed more by ligand architecture than by the electronic stabilization, the most frequent coordination numbers are four and six (Melnik et al., 1995
). When analysing five-coordinate zinc complexes, generally two principal geometries occur: square pyramidal and trigonal bipyramidal. The coordination environment of the ZnII cation in compound 1 is observed to have a distorted trigonal–bipiramidal geometry (SHAPE analysis: TBPY-5 = 1.996) in which the basal plane is described by the nitrogen atom of the quinaldine ligand and one of the sulfur atoms from the two thiocarboxylate units (Fig. 1
). The ZnII cation is coordinated by four S atoms with distances ranging from 2.3669 (9) to 2.6080 (10) Å and an N atom at a distance of 2.103 (2) Å. The C—N bond length to the dithiocarbamate moiety is 1.331 (4) Å. These bond lengths are similar to those reported for related complexes (see Section 4: Database survey). Intramolecular short contacts and hydrogen bonds (Table 1
) are observed.
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| Figure 1 The molecular structure of the title compound 1, showing the trigonal–bipyramidal coordination geometry around the ZnII atom in the first coordination sphere. Displacement ellipsoids are drawn at the 50% probability level. |
3. Supramolecular features
The packing of 1 reveals π–π interactions between adjacent heterocycles of quinaldine molecules [intercentroid distance = 3.672 (2) Å], forming dimers (Fig. 2
).
| Figure 2 View along the c axis of the packing of compound 1 showing π–π stacking between neighbouring quinaldine molecules. Insert: detail of π–π interactions between quinaldine units, Cg⋯Cg = 3.672 (2) Å. |
4. Database survey
A survey of the Cambridge Structural Database (CSD, version6.01 February 2026; Groom et al., 2016
) showed more than 200 complexes in which ZnII atoms are coordinated by four sulfur atoms and one nitrogen. More than 170 structures exhibit a ZnS4N coordination environment with the four sulfur atoms belonging to two thiocarbamato units. Among them, around 50 examples crystallize in the triclinic crystal system. Although there are examples in which there is another coordinating atom, usually nitrogen, which ensures a coordination number of 6 (Reck & Becker, 2004b
; Srinivasan et al., 2013
; Ramalingam et al., 2010
), the majority of the structures exhibit coordination number 5 where the nitrogen atom belongs to a ligand such as pyridine (Selvaganapathi et al., 2018
; Jamuna Rani et al., 2015
; Dulare et al., 2012
; Malik et al., 1997
), pyrazine (Jotani et al., 2017
), imidazole (Chen & Powers, 1995
), urotropine (Konarev et al., 2008
; Câmpian et al., 2016
) or 4,4′-bipyridine (Manohar et al., 2001
; Benson et al., 2007
). The coordinative bond lengths for the similar complexes are listed in Table 2
.
|
5. Synthesis and crystallization
All solvents were of analytical grade and were used without further purification. The metal salt and the reagents used in the ligand synthesis were obtained from commercial sources. For the synthesis of the Zn diallyldithiocarbamate complex [ZnL2], the previously reported procedure was used (Hrubaru et al., 2016
). After recrystallization from chloroform, the [ZnL2] complex was further used for the synthesis of the corresponding adduct with 2-quinaldine.
The [ZnL2Qy] adduct was also prepared following a previously reported method (Onwudiwe et al., 2016
). Thus, approximately 0.3 g of [ZnL2] were dissolved in 10 mL of quinaldine solution (Lewis base), and the resulting suspension was refluxed for 8 h at a temperature between 363–373 K. After a while the solution became clear, and shortly thereafter a white precipitate began to form. The reaction was allowed to cool, and the quinaldine solution was filtered. The precipitate obtained was rinsed with water, followed by ethanol, and recrystallized from hot chloroform. Yield: 0.38 g, 56%, m.p.: 379–382 K.
1H-NMR and 13C-NMR spectra were recorded on Varian Mercury Plus 300 MHz spectrometer equipped with Probe 300AutoSw PFG 4 NUC/30-122 MHz; the chemical shifts are given in ppm relative to TMS as internal standard. Complementary spectra: 2D-NMR were done for the correct assignment of NMR signals. The chemical shifts δ are expressed in ppm (δ) and the coupling constants J in Hz. The following abbreviations were used to characterize the signals: s – singlet, d – doublet, t – triplet, m – multiplet, ddd – double doublet, td – triple doublet, bd – broadened doublet. Infrared (solid ATR) spectra were recorded on a FT-IR Bruker Vertex 70 by ATR spectrometer directly on small samples of the compounds in the range of 4000–400 cm−1. The following abbreviations were used to characterize the signals: w = weak, m = medium, s = strong, v = very, br = broad.
1H-NMR (CDCl3, δ ppm, J Hz): 8.03 (d, 8.2, 1H, H3), 8.01 [bd, 7.5, 1H, H9(6)], 7.27 (d, 8.2, 1H, H4), 7.76 [dd, 7.9, 1.5, 1H, H6(9)], 7.67 [td, 7.0, 1.4, 1H, H-7(8)], 7.46 [td, 7.0, 1.4, 1H, H8(7)], 7.27 (d, 8.2, 1H, H3), 5.86 (ddt, 17.0, 10.2, 5.9, 1H, H13), 4.45 (bd, 5.9, 2H, H12); 2.74 (s, H15), 5.28 (bd, 10.2, H14cis), 5.24 (bd, 17.0, H14trans). 13C-NMR (CDCl3, δ ppm): 205.2 (C11), 159.1(C2), 147.9 (C10), 136.3 (C4), 130.3 (C13), 129.5 (C8), 128.7 (C9), 127.6 (C6), 126.6 (C5), 125.8 (C7), 122.1 (C3), 119.5 (C14), 56.1 (C12), 25.5 (C15). Selected ν IR data (solid ATR, cm−1): 3075.3w, 2974.4w, 2918.9w, 1638.7w, 1486.3vs, 1464.8vs, 1426.5s, 1405.7vs, 1339.6, 1276.8w, 1230.6vs, 1173.6s, 1100.6m, 989.3s, 928.91s, 915.7vs, 682.7w, 651.2w, 577.3w, 545.4w. Crystals suitable for single-crystal X-ray analysis were obtained by recrystallization from chloroform/ethanol (50/50 v/v).
6. Refinement
Crystal data, data collection and structure details are summarized in Table 3
. H atoms were positioned geometrically and were allowed to ride on the parent C atoms and rotate around C—C bonds.
|
Supporting information
CCDC reference: 2556564
contains datablocks I, my_structure. DOI: https://doi.org/10.1107/S2056989026007206/jp2029sup1.cif
Structure factors: contains datablock I. DOI: https://doi.org/10.1107/S2056989026007206/jp2029Isup2.hkl
| [Zn(C7H10NS2)2(C10H9N)] | Z = 2 |
| Mr = 553.11 | F(000) = 576 |
| Triclinic, P1 | Dx = 1.396 Mg m−3 |
| a = 10.1713 (8) Å | Mo Kα radiation, λ = 0.71073 Å |
| b = 10.2868 (6) Å | Cell parameters from 3806 reflections |
| c = 14.1190 (9) Å | θ = 1.5–31.6° |
| α = 97.659 (5)° | µ = 1.27 mm−1 |
| β = 101.518 (6)° | T = 199 K |
| γ = 111.145 (6)° | Prism, clear light colourless |
| V = 1315.54 (17) Å3 | 0.2 × 0.2 × 0.15 mm |
| Xcalibur, Eos diffractometer | 4641 independent reflections |
| Radiation source: fine-focus sealed X-ray tube, Enhance (Mo) X-ray Source | 3738 reflections with I > 2σ(I) |
| Graphite monochromator | Rint = 0.038 |
| Detector resolution: 16.1593 pixels mm-1 | θmax = 25.0°, θmin = 2.2° |
| ω scans | h = −12→12 |
| Absorption correction: multi-scan (CrysAlisPro; Rigaku OD, 2015) | k = −12→12 |
| Tmin = 0.705, Tmax = 1.000 | l = −16→16 |
| 10083 measured reflections |
| Refinement on F2 | Primary atom site location: dual |
| Least-squares matrix: full | Hydrogen site location: inferred from neighbouring sites |
| R[F2 > 2σ(F2)] = 0.043 | H-atom parameters constrained |
| wR(F2) = 0.106 | w = 1/[σ2(Fo2) + (0.0513P)2] where P = (Fo2 + 2Fc2)/3 |
| S = 1.01 | (Δ/σ)max < 0.001 |
| 4641 reflections | Δρmax = 0.60 e Å−3 |
| 290 parameters | Δρmin = −0.32 e Å−3 |
| 0 restraints |
Geometry. All esds (except the esd in the dihedral angle between two l.s. planes) are estimated using the full covariance matrix. The cell esds are taken into account individually in the estimation of esds in distances, angles and torsion angles; correlations between esds in cell parameters are only used when they are defined by crystal symmetry. An approximate (isotropic) treatment of cell esds is used for estimating esds involving l.s. planes. |
Refinement. The structure was solved with ShelXT program using intrinsic phasing method and refined by full-matrix least squares method on F2 with ShelXL (Sheldrick, 2008, 2015b,a). Olex2 was used as an interface to the ShelX program (Dolomanov et al., 2009). All non-H atoms were refined anisotropically. H atoms were positioned geometrically and refined with riding coordinates. CH3 H atoms were positioned geometrically and were allowed to ride on C atom and rotate around C-C bond. Empirical absorption correction using spherical harmonics was applied. |
| x | y | z | Uiso*/Ueq | ||
| Zn1 | 0.48037 (4) | 0.24861 (4) | 0.21013 (3) | 0.03032 (14) | |
| S1 | 0.43656 (9) | 0.22107 (9) | 0.36779 (6) | 0.0361 (2) | |
| S2 | 0.24447 (10) | 0.02821 (9) | 0.17742 (6) | 0.0355 (2) | |
| S3 | 0.74518 (10) | 0.44703 (9) | 0.27158 (6) | 0.0357 (2) | |
| S4 | 0.63785 (9) | 0.15174 (9) | 0.15520 (6) | 0.0362 (2) | |
| N1 | 0.2005 (3) | −0.0136 (3) | 0.35258 (18) | 0.0330 (6) | |
| N2 | 0.9210 (3) | 0.3231 (3) | 0.2269 (2) | 0.0346 (6) | |
| N3 | 0.3965 (3) | 0.3680 (3) | 0.12491 (18) | 0.0276 (6) | |
| C1 | 0.2835 (3) | 0.0695 (3) | 0.3044 (2) | 0.0284 (7) | |
| C2 | 0.2210 (4) | 0.0235 (4) | 0.4605 (2) | 0.0400 (8) | |
| H2A | 0.127682 | 0.011472 | 0.473488 | 0.048* | |
| H2B | 0.286981 | 0.123159 | 0.486343 | 0.048* | |
| C3 | 0.2816 (4) | −0.0674 (4) | 0.5122 (3) | 0.0497 (10) | |
| H3 | 0.372719 | −0.063582 | 0.507407 | 0.060* | |
| C4 | 0.2153 (5) | −0.1515 (5) | 0.5636 (3) | 0.0707 (13) | |
| H4A | 0.124016 | −0.157600 | 0.569730 | 0.085* | |
| H4B | 0.258823 | −0.205888 | 0.594341 | 0.085* | |
| C5 | 0.0732 (4) | −0.1484 (3) | 0.3007 (3) | 0.0405 (9) | |
| H5A | 0.089990 | −0.189264 | 0.240548 | 0.049* | |
| H5B | 0.061618 | −0.216608 | 0.342888 | 0.049* | |
| C6 | −0.0607 (4) | −0.1217 (4) | 0.2755 (3) | 0.0562 (11) | |
| H6 | −0.064808 | −0.064191 | 0.230457 | 0.067* | |
| C7 | −0.1717 (5) | −0.1695 (4) | 0.3093 (3) | 0.0666 (12) | |
| H7A | −0.172897 | −0.227490 | 0.354568 | 0.080* | |
| H7B | −0.251549 | −0.146342 | 0.288643 | 0.080* | |
| C8 | 0.7830 (4) | 0.3092 (3) | 0.2187 (2) | 0.0306 (7) | |
| C9 | 0.9546 (4) | 0.2061 (4) | 0.1823 (3) | 0.0462 (10) | |
| H9A | 0.873727 | 0.116015 | 0.175816 | 0.055* | |
| H9B | 1.040607 | 0.205626 | 0.226569 | 0.055* | |
| C10 | 0.9815 (4) | 0.2158 (4) | 0.0836 (3) | 0.0570 (11) | |
| H10 | 1.007909 | 0.146333 | 0.053686 | 0.068* | |
| C11 | 0.9717 (4) | 0.3117 (6) | 0.0348 (3) | 0.0705 (14) | |
| H11A | 0.945643 | 0.383412 | 0.061617 | 0.085* | |
| H11B | 0.990827 | 0.308745 | −0.026997 | 0.085* | |
| C12 | 1.0473 (4) | 0.4538 (4) | 0.2830 (3) | 0.0444 (9) | |
| H12A | 1.025038 | 0.536334 | 0.274424 | 0.053* | |
| H12B | 1.130480 | 0.461079 | 0.257136 | 0.053* | |
| C13 | 1.0861 (5) | 0.4548 (5) | 0.3910 (3) | 0.0650 (13) | |
| H13 | 1.022201 | 0.467706 | 0.426497 | 0.078* | |
| C14 | 1.1978 (5) | 0.4398 (5) | 0.4396 (3) | 0.0789 (15) | |
| H14A | 1.265039 | 0.426548 | 0.407537 | 0.095* | |
| H14B | 1.212019 | 0.442023 | 0.507039 | 0.095* | |
| C15 | 0.4040 (3) | 0.5001 (3) | 0.1689 (2) | 0.0258 (7) | |
| C16 | 0.4472 (3) | 0.5463 (3) | 0.2726 (2) | 0.0310 (7) | |
| H16 | 0.472382 | 0.488546 | 0.311754 | 0.037* | |
| C17 | 0.4526 (4) | 0.6761 (4) | 0.3167 (3) | 0.0404 (9) | |
| H17 | 0.480095 | 0.704657 | 0.385486 | 0.048* | |
| C18 | 0.4172 (4) | 0.7663 (4) | 0.2592 (3) | 0.0434 (9) | |
| H18 | 0.421761 | 0.854212 | 0.289847 | 0.052* | |
| C19 | 0.3764 (4) | 0.7244 (4) | 0.1588 (3) | 0.0419 (9) | |
| H19 | 0.353669 | 0.784583 | 0.120956 | 0.050* | |
| C20 | 0.3678 (3) | 0.5908 (3) | 0.1109 (2) | 0.0312 (7) | |
| C21 | 0.3223 (4) | 0.5421 (4) | 0.0069 (2) | 0.0362 (8) | |
| H21 | 0.299591 | 0.599907 | −0.033241 | 0.043* | |
| C22 | 0.3119 (3) | 0.4110 (4) | −0.0345 (2) | 0.0340 (8) | |
| H22 | 0.280925 | 0.378382 | −0.103070 | 0.041* | |
| C23 | 0.3476 (3) | 0.3238 (3) | 0.0260 (2) | 0.0280 (7) | |
| C24 | 0.3329 (4) | 0.1782 (3) | −0.0220 (2) | 0.0376 (8) | |
| H24A | 0.418591 | 0.163390 | 0.007219 | 0.056* | |
| H24B | 0.322562 | 0.171419 | −0.091759 | 0.056* | |
| H24C | 0.248210 | 0.106698 | −0.012062 | 0.056* |
| U11 | U22 | U33 | U12 | U13 | U23 | |
| Zn1 | 0.0368 (2) | 0.0322 (2) | 0.0286 (2) | 0.01821 (19) | 0.01148 (17) | 0.01121 (17) |
| S1 | 0.0402 (5) | 0.0348 (5) | 0.0288 (4) | 0.0099 (4) | 0.0083 (4) | 0.0083 (4) |
| S2 | 0.0445 (5) | 0.0341 (5) | 0.0259 (4) | 0.0139 (4) | 0.0084 (4) | 0.0073 (4) |
| S3 | 0.0422 (5) | 0.0314 (5) | 0.0365 (5) | 0.0190 (4) | 0.0108 (4) | 0.0048 (4) |
| S4 | 0.0367 (5) | 0.0306 (5) | 0.0409 (5) | 0.0149 (4) | 0.0098 (4) | 0.0030 (4) |
| N1 | 0.0393 (16) | 0.0263 (15) | 0.0281 (14) | 0.0091 (13) | 0.0057 (12) | 0.0054 (12) |
| N2 | 0.0362 (16) | 0.0288 (15) | 0.0420 (16) | 0.0153 (13) | 0.0142 (13) | 0.0067 (13) |
| N3 | 0.0302 (14) | 0.0285 (14) | 0.0282 (14) | 0.0138 (12) | 0.0086 (11) | 0.0120 (12) |
| C1 | 0.0377 (18) | 0.0253 (17) | 0.0290 (16) | 0.0189 (15) | 0.0093 (14) | 0.0092 (14) |
| C2 | 0.046 (2) | 0.041 (2) | 0.0272 (17) | 0.0094 (18) | 0.0122 (16) | 0.0060 (16) |
| C3 | 0.044 (2) | 0.072 (3) | 0.038 (2) | 0.026 (2) | 0.0085 (17) | 0.020 (2) |
| C4 | 0.074 (3) | 0.086 (3) | 0.066 (3) | 0.039 (3) | 0.017 (2) | 0.043 (3) |
| C5 | 0.049 (2) | 0.0292 (19) | 0.0370 (19) | 0.0085 (17) | 0.0103 (17) | 0.0098 (16) |
| C6 | 0.045 (2) | 0.037 (2) | 0.065 (3) | 0.002 (2) | −0.002 (2) | 0.013 (2) |
| C7 | 0.061 (3) | 0.054 (3) | 0.066 (3) | 0.012 (2) | 0.008 (2) | −0.004 (2) |
| C8 | 0.042 (2) | 0.0303 (18) | 0.0249 (16) | 0.0177 (16) | 0.0110 (14) | 0.0121 (14) |
| C9 | 0.037 (2) | 0.037 (2) | 0.071 (3) | 0.0229 (18) | 0.0127 (19) | 0.0088 (19) |
| C10 | 0.044 (2) | 0.056 (3) | 0.063 (3) | 0.018 (2) | 0.018 (2) | −0.012 (2) |
| C11 | 0.045 (3) | 0.109 (4) | 0.051 (3) | 0.025 (3) | 0.018 (2) | 0.007 (3) |
| C12 | 0.036 (2) | 0.040 (2) | 0.053 (2) | 0.0107 (18) | 0.0147 (18) | 0.0052 (18) |
| C13 | 0.051 (3) | 0.082 (3) | 0.049 (2) | 0.018 (2) | 0.014 (2) | −0.008 (2) |
| C14 | 0.064 (3) | 0.117 (4) | 0.053 (3) | 0.030 (3) | 0.020 (2) | 0.023 (3) |
| C15 | 0.0231 (16) | 0.0253 (17) | 0.0307 (16) | 0.0103 (14) | 0.0085 (13) | 0.0081 (14) |
| C16 | 0.0322 (18) | 0.0290 (18) | 0.0322 (17) | 0.0138 (15) | 0.0064 (14) | 0.0068 (15) |
| C17 | 0.036 (2) | 0.042 (2) | 0.0390 (19) | 0.0161 (17) | 0.0059 (16) | −0.0002 (17) |
| C18 | 0.042 (2) | 0.033 (2) | 0.058 (2) | 0.0216 (18) | 0.0115 (18) | 0.0039 (18) |
| C19 | 0.045 (2) | 0.038 (2) | 0.050 (2) | 0.0242 (18) | 0.0123 (18) | 0.0141 (18) |
| C20 | 0.0272 (17) | 0.0304 (18) | 0.0411 (19) | 0.0139 (15) | 0.0114 (15) | 0.0141 (15) |
| C21 | 0.0345 (19) | 0.044 (2) | 0.0374 (18) | 0.0211 (17) | 0.0075 (15) | 0.0206 (16) |
| C22 | 0.0293 (18) | 0.044 (2) | 0.0284 (17) | 0.0142 (16) | 0.0061 (14) | 0.0119 (16) |
| C23 | 0.0237 (16) | 0.0319 (18) | 0.0275 (16) | 0.0090 (15) | 0.0080 (13) | 0.0079 (14) |
| C24 | 0.047 (2) | 0.0326 (19) | 0.0263 (16) | 0.0128 (17) | 0.0048 (15) | 0.0021 (15) |
| Zn1—S1 | 2.3888 (9) | C9—H9B | 0.9700 |
| Zn1—S2 | 2.5425 (10) | C9—C10 | 1.482 (5) |
| Zn1—S3 | 2.6080 (10) | C10—H10 | 0.9300 |
| Zn1—S4 | 2.3669 (9) | C10—C11 | 1.297 (6) |
| Zn1—N3 | 2.103 (2) | C11—H11A | 0.9300 |
| S1—C1 | 1.725 (3) | C11—H11B | 0.9300 |
| S2—C1 | 1.716 (3) | C12—H12A | 0.9700 |
| S3—C8 | 1.715 (3) | C12—H12B | 0.9700 |
| S4—C8 | 1.722 (3) | C12—C13 | 1.495 (5) |
| N1—C1 | 1.331 (4) | C13—H13 | 0.9300 |
| N1—C2 | 1.473 (4) | C13—C14 | 1.277 (5) |
| N1—C5 | 1.480 (4) | C14—H14A | 0.9300 |
| N2—C8 | 1.338 (4) | C14—H14B | 0.9300 |
| N2—C9 | 1.465 (4) | C15—C16 | 1.403 (4) |
| N2—C12 | 1.466 (4) | C15—C20 | 1.417 (4) |
| N3—C15 | 1.386 (4) | C16—H16 | 0.9300 |
| N3—C23 | 1.340 (4) | C16—C17 | 1.373 (4) |
| C2—H2A | 0.9700 | C17—H17 | 0.9300 |
| C2—H2B | 0.9700 | C17—C18 | 1.405 (5) |
| C2—C3 | 1.486 (5) | C18—H18 | 0.9300 |
| C3—H3 | 0.9300 | C18—C19 | 1.356 (5) |
| C3—C4 | 1.292 (5) | C19—H19 | 0.9300 |
| C4—H4A | 0.9300 | C19—C20 | 1.413 (4) |
| C4—H4B | 0.9300 | C20—C21 | 1.410 (4) |
| C5—H5A | 0.9700 | C21—H21 | 0.9300 |
| C5—H5B | 0.9700 | C21—C22 | 1.354 (4) |
| C5—C6 | 1.470 (5) | C22—H22 | 0.9300 |
| C6—H6 | 0.9300 | C22—C23 | 1.407 (4) |
| C6—C7 | 1.272 (6) | C23—C24 | 1.501 (4) |
| C7—H7A | 0.9300 | C24—H24A | 0.9600 |
| C7—H7B | 0.9300 | C24—H24B | 0.9600 |
| C9—H9A | 0.9700 | C24—H24C | 0.9600 |
| S1—Zn1—S2 | 73.21 (3) | N2—C9—C10 | 113.7 (3) |
| S1—Zn1—S3 | 98.65 (3) | H9A—C9—H9B | 107.7 |
| S2—Zn1—S3 | 167.33 (3) | C10—C9—H9A | 108.8 |
| S4—Zn1—S1 | 118.16 (3) | C10—C9—H9B | 108.8 |
| S4—Zn1—S2 | 102.45 (3) | C9—C10—H10 | 116.8 |
| S4—Zn1—S3 | 72.44 (3) | C11—C10—C9 | 126.4 (4) |
| N3—Zn1—S1 | 122.15 (7) | C11—C10—H10 | 116.8 |
| N3—Zn1—S2 | 98.16 (7) | C10—C11—H11A | 120.0 |
| N3—Zn1—S3 | 94.40 (7) | C10—C11—H11B | 120.0 |
| N3—Zn1—S4 | 119.53 (7) | H11A—C11—H11B | 120.0 |
| C1—S1—Zn1 | 86.86 (11) | N2—C12—H12A | 109.3 |
| C1—S2—Zn1 | 82.25 (11) | N2—C12—H12B | 109.3 |
| C8—S3—Zn1 | 80.86 (12) | N2—C12—C13 | 111.5 (3) |
| C8—S4—Zn1 | 88.28 (11) | H12A—C12—H12B | 108.0 |
| C1—N1—C2 | 123.5 (3) | C13—C12—H12A | 109.3 |
| C1—N1—C5 | 122.3 (3) | C13—C12—H12B | 109.3 |
| C2—N1—C5 | 114.1 (3) | C12—C13—H13 | 116.6 |
| C8—N2—C9 | 121.6 (3) | C14—C13—C12 | 126.7 (4) |
| C8—N2—C12 | 122.4 (3) | C14—C13—H13 | 116.6 |
| C9—N2—C12 | 115.9 (3) | C13—C14—H14A | 120.0 |
| C15—N3—Zn1 | 120.54 (18) | C13—C14—H14B | 120.0 |
| C23—N3—Zn1 | 120.4 (2) | H14A—C14—H14B | 120.0 |
| C23—N3—C15 | 118.8 (3) | N3—C15—C16 | 120.2 (3) |
| S2—C1—S1 | 117.62 (19) | N3—C15—C20 | 121.1 (3) |
| N1—C1—S1 | 121.0 (2) | C16—C15—C20 | 118.6 (3) |
| N1—C1—S2 | 121.3 (2) | C15—C16—H16 | 119.7 |
| N1—C2—H2A | 109.3 | C17—C16—C15 | 120.5 (3) |
| N1—C2—H2B | 109.3 | C17—C16—H16 | 119.7 |
| N1—C2—C3 | 111.6 (3) | C16—C17—H17 | 119.6 |
| H2A—C2—H2B | 108.0 | C16—C17—C18 | 120.9 (3) |
| C3—C2—H2A | 109.3 | C18—C17—H17 | 119.5 |
| C3—C2—H2B | 109.3 | C17—C18—H18 | 120.2 |
| C2—C3—H3 | 118.0 | C19—C18—C17 | 119.6 (3) |
| C4—C3—C2 | 123.9 (4) | C19—C18—H18 | 120.2 |
| C4—C3—H3 | 118.0 | C18—C19—H19 | 119.5 |
| C3—C4—H4A | 120.0 | C18—C19—C20 | 121.0 (3) |
| C3—C4—H4B | 120.0 | C20—C19—H19 | 119.5 |
| H4A—C4—H4B | 120.0 | C19—C20—C15 | 119.3 (3) |
| N1—C5—H5A | 109.6 | C21—C20—C15 | 118.0 (3) |
| N1—C5—H5B | 109.6 | C21—C20—C19 | 122.7 (3) |
| H5A—C5—H5B | 108.1 | C20—C21—H21 | 120.1 |
| C6—C5—N1 | 110.5 (3) | C22—C21—C20 | 119.8 (3) |
| C6—C5—H5A | 109.6 | C22—C21—H21 | 120.1 |
| C6—C5—H5B | 109.6 | C21—C22—H22 | 119.9 |
| C5—C6—H6 | 116.7 | C21—C22—C23 | 120.2 (3) |
| C7—C6—C5 | 126.5 (4) | C23—C22—H22 | 119.9 |
| C7—C6—H6 | 116.7 | N3—C23—C22 | 121.9 (3) |
| C6—C7—H7A | 120.0 | N3—C23—C24 | 119.1 (3) |
| C6—C7—H7B | 120.0 | C22—C23—C24 | 119.0 (3) |
| H7A—C7—H7B | 120.0 | C23—C24—H24A | 109.5 |
| S3—C8—S4 | 118.01 (19) | C23—C24—H24B | 109.5 |
| N2—C8—S3 | 121.1 (2) | C23—C24—H24C | 109.5 |
| N2—C8—S4 | 120.9 (2) | H24A—C24—H24B | 109.5 |
| N2—C9—H9A | 108.8 | H24A—C24—H24C | 109.5 |
| N2—C9—H9B | 108.8 | H24B—C24—H24C | 109.5 |
| Zn1—S1—C1—S2 | −2.37 (15) | C5—N1—C2—C3 | 74.9 (4) |
| Zn1—S1—C1—N1 | 176.3 (2) | C8—N2—C9—C10 | 96.1 (4) |
| Zn1—S2—C1—S1 | 2.24 (15) | C8—N2—C12—C13 | 84.4 (4) |
| Zn1—S2—C1—N1 | −176.5 (3) | C9—N2—C8—S3 | 179.9 (2) |
| Zn1—S3—C8—S4 | 5.83 (15) | C9—N2—C8—S4 | 0.2 (4) |
| Zn1—S3—C8—N2 | −173.9 (3) | C9—N2—C12—C13 | −93.9 (4) |
| Zn1—S4—C8—S3 | −6.35 (16) | C12—N2—C8—S3 | 1.7 (4) |
| Zn1—S4—C8—N2 | 173.3 (3) | C12—N2—C8—S4 | −178.0 (2) |
| Zn1—N3—C15—C16 | −9.7 (4) | C12—N2—C9—C10 | −85.6 (4) |
| Zn1—N3—C15—C20 | 170.7 (2) | C15—N3—C23—C22 | 3.6 (4) |
| Zn1—N3—C23—C22 | −170.1 (2) | C15—N3—C23—C24 | −177.4 (3) |
| Zn1—N3—C23—C24 | 8.9 (4) | C15—C16—C17—C18 | −0.9 (5) |
| N1—C2—C3—C4 | −119.1 (4) | C15—C20—C21—C22 | 1.2 (5) |
| N1—C5—C6—C7 | −115.3 (4) | C16—C15—C20—C19 | 0.1 (5) |
| N2—C9—C10—C11 | −3.0 (6) | C16—C15—C20—C21 | −179.0 (3) |
| N2—C12—C13—C14 | 108.5 (5) | C16—C17—C18—C19 | 0.3 (6) |
| N3—C15—C16—C17 | −178.9 (3) | C17—C18—C19—C20 | 0.4 (6) |
| N3—C15—C20—C19 | 179.7 (3) | C18—C19—C20—C15 | −0.7 (5) |
| N3—C15—C20—C21 | 0.6 (5) | C18—C19—C20—C21 | 178.4 (3) |
| C1—N1—C2—C3 | −108.6 (4) | C19—C20—C21—C22 | −177.9 (3) |
| C1—N1—C5—C6 | −91.1 (4) | C20—C15—C16—C17 | 0.7 (5) |
| C2—N1—C1—S1 | 7.2 (4) | C20—C21—C22—C23 | −0.6 (5) |
| C2—N1—C1—S2 | −174.2 (2) | C21—C22—C23—N3 | −1.9 (5) |
| C2—N1—C5—C6 | 85.4 (4) | C21—C22—C23—C24 | 179.2 (3) |
| C5—N1—C1—S1 | −176.6 (2) | C23—N3—C15—C16 | 176.6 (3) |
| C5—N1—C1—S2 | 2.0 (4) | C23—N3—C15—C20 | −3.0 (4) |
| D—H···A | D—H | H···A | D···A | D—H···A |
| C2—H2B···S1 | 0.97 | 2.55 | 3.048 (4) | 112 |
| C9—H9A···S4 | 0.97 | 2.52 | 2.999 (4) | 110 |
| C16—H16···S1 | 0.93 | 2.88 | 3.742 (3) | 155 |
| C24—H24A···S4 | 0.96 | 2.78 | 3.694 (3) | 158 |
| C24—H24C···S2 | 0.96 | 2.90 | 3.505 (4) | 122 |
| Refcode | CCDC No. | Zn1—S | Zn1—N | Reference |
| MIDQEY | 1584489 | 2.3569 (10)–2.6047 (10) | 2.068 (3) | Selvaganapathi et al. (2018) |
| NORBIH | 948010 | 2.3574 (6)–2.6200 (6) | 2.0579 (17) | Jamuna Rani et al. (2015) |
| RALQEC | 773588 | 2.3770 (15)–2.5251 (13) | 2.069 (4) | Dulare et al. (2012) |
| RIPKUW | 1250327 | 2.3371 (4)–2.6124 (5) | 2.069 (3) | Malik et al. (1997) |
| QEVDAZ | 1507480 | 2.4121 (6)–2.4629 (6) | 2.1419 (13) | Jotani et al. (2017) |
| TEDVON | 1268607 | 2.3622 (4)–2.5816 (4) | 2.0086 (11) | Chen & Powers, 1995) |
| QIYVEA01 | 638246 | 2.3533 (6)–2.6257 (6) | 2.1207 (18) | Konarev et al. (2008) |
| YAKYOB | 1409585 | 2.3358 (7)–2.6525 (8) | 2.102 (2) | Câmpian et al. (2016) |
| XEYWIH | 147187 | 2.3487 (2)–2.6019 (2) | 2.0721 (5) | Manohar et al. (2001) |
| XEYWIH01 | 645547 | 2.3628 (12)–2.6074 (13) | 2.082 (3) | Benson et al. (2007) |
| Compound 1 | 2558105 | 2.3669 (9)–2.6080 (10) | 2.103 (2) | This work |
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