research communications
Synthesis and structure of pyridinium trichlorido(pyridine-κN)zincate(II)
aKarshi State Technical University, 225 Mustaqillik Avenue, Karshi City, Kashkadarya region, Uzbekistan, bUzGTL, Guzar district, Kashkadarya region, Uzbekistan, and cUniversity of Economics and Pedagogy, 13 I. Karimov Avenue, Karshi, 180100, Uzbekistan
*Correspondence e-mail: [email protected]
In the title salt, (C5H6N)[ZnCl3(C5H5N)], the Zn2+ atom is four-coordinated by one pyridine N atom and three chloride ligands, forming a slightly distorted tetrahedral ZnNCl3 environment. In the crystal, the cation and anion are linked by bifurcated N—H⋯(Cl,Cl) and C—H⋯Cl hydrogen bonds, generating a supramolecular assembly that is further consolidated by π–π stacking interactions between aromatic rings. Hirshfeld surface analysis shows that H⋯Cl/Cl⋯H contacts are the dominant contribution to the crystal packing, accounting for 44.1% of the total surface contacts, followed by H⋯H (29.9%) and H⋯C/C⋯H (15.0%) interactions.
Keywords: crystal structure; zinc(II) complex; pyridine; chloridozincate; Hirshfeld surface analysis; π–π stacking interactions.
CCDC reference: 2571358
1. Chemical context
A large number of compounds based on transition-metal complexes with pyridine and its derivatives have been reported in the literature (Khan, 2021
; Elsayed et al., 2024
; Zou et al., 2021
). Pyridine is one of the simplest heterocyclic compounds, structurally resembling benzene, in which a methine group is replaced by an N atom. It is precisely this electronegative N atom that fundamentally distinguishes pyridine from benzene, endowing it with distinct chemical properties. The pyridine scaffold is one of the most important structural elements found in numerous approved pharmaceutical drugs on the market (Khan, 2021
; Temple et al., 1992
; El-Naggar et al., 2021
).
Unlike many other transition metals, the Zn2+ ion has a 3d10 displays no redox activity and is generally far less toxic to humans, which makes it a promising basis for the development of metal-containing drugs (Porchia et al., 2020
). Zinc typically forms complexes with coordination numbers of 4 or 6, with tetrahedral coordination being the most characteristic geometry for this ion (Kokunov et al., 2009
).
In recent years, interest in the synthesis of zinc-based complexes has grown considerably owing to their favourable biological properties, with pyridine and its derivatives being among the most effective ligands for this purpose. Such complexes have been synthesized and characterized in several studies (Modec, 2018
; Sun et al., 2022
). It has also been shown that some pyridine-based complexes exhibit higher biological activity than the corresponding free ligand. This is attributed to a synergistic effect between the metal centre and the biologically active ligand, as well as to an increase in the lipophilicity of the complex and, consequently, its ability to cross cell membranes. Xun-Zhong et al. (2020
) synthesized zinc complexes with two pyridine-derived ligands that displayed higher antitumour and antibacterial activity than the free ligand. Likewise, a zinc complex based on an iminopyridine ligand was found to exhibit higher antibacterial activity against planktonic cells of Staphylococcus aureus (Gram-positive) and Escherichia coli (Gram-negative) strains than the corresponding copper complex (de la Mata Moratilla et al., 2024
).
As part of our studies in this area, we now describe the synthesis and structure of the title salt, (C5H6N)[ZnCl3(C5H5N)], (I).
2. Structural commentary
Compound (I) crystallizes in the monoclinic space group P21/n and the contains one [C5H6N]+ pyridinium cation and one [ZnCl3(C5H5N)]− anion. The Zn2+ ion is coordinated by three chloride ions and one pyridine N atom, forming a slightly distorted tetrahedral coordination environment (Fig. 1
). The Zn—N bond length is 2.049 (2) Å, whereas the Zn—Cl distances lie in the typical range observed for tetrahedral chloridozinc(II) complexes (Cotton et al., 1985
; Albrecht et al., 2003
), namely, 2.2295 (8)–2.2551 (9) Å (Table 1
). The bond angles around the metal centre vary from 106.42 (7) to 114.48 (4)°, deviating from the ideal tetrahedral value of 109.47°. The largest angle is Cl2—Zn—Cl3 = 114.48 (4)°, whereas the smallest is Cl2—Zn—N1 = 106.42 (7)°. The extent of distortion is small, as confirmed by the τ4 parameter (Addison et al., 1984
) of 0.946, which is close to unity for an ideal tetrahedron. As expected, the pyridine ring of the coordinated ligand is essentially planar, with an r.m.s. deviation of 0.006 Å. In the counter-ion, protonation of the N atom gives rise to a pyridinium cation, which compensates the negative charge of the complex anion.
|
| | Figure 1 The molecular structure of (I), with displacement ellipsoids for non-H atoms drawn at the 50% probability level. Hydrogen bonds are shown as dashed lines. |
3. Supramolecular features
The crystal packing of compound (I) features bifurcated N—H⋯(Cl,Cl) hydrogen bonds, as well as non-classical C—H⋯Cl interactions (Fig. 2
). The protonated N2 atom of the pyridinium cation acts as an efficient hydrogen-bond donor and forms a bifurcated interaction with the chloride ions of the complex anion, namely, N2—HN6⋯Cl1 and N2—HN6⋯Cl3 (Table 2
). The H⋯Cl separations are almost the same and the Cl⋯H⋯Cl angle is 84.2 (4)°.
|
| Figure 2 Supramolecular structure of (I), showing N—H⋯Cl hydrogen bonds and non-classical C—H⋯Cl interactions forming chains along [120]. |
In addition, the packing is consolidated by two C—H⋯Cl contacts. Atoms H8 and H9 of the pyridine ring participate in interactions with atom Cl2 of neighbouring complex anions (Table 2
and Fig. 2
). Thus, the C—H⋯Cl interactions complement the classical N—H⋯Cl contacts and generate an extended supramolecular network.
An additional stabilizing factor is provided by weak π–π stacking interactions between adjacent aromatic rings (Fig. 3
), with centroid–centroid separations of Cg2⋯Cg2 = 3.824 (2) Å and Cg1⋯Cg2 = 4.051 (2) Å, where Cg1 denotes the C1–C5/N1 ring and Cg2 denotes the C6–C10/N2 ring. These values, together with the moderate interplanar angles and noticeable lateral displacement of the rings, indicate a slipped π–π stacking arrangement. Although these interactions are not strong in the classical sense, they appear to make a significant contribution to the consolidation of the crystal packing.
| Figure 3 Aromatic π–π stacking interactions in the of (I). |
4. Hirshfeld surface and void analysis
The Hirshfeld surface (HS) of (I) was calculated using CrystalExplorer 21.5 (Spackman et al., 2021
). The dnorm map (Fig. 4
) exhibits characteristic red spots in regions of the shortest intermolecular contacts, indicating areas where interatomic distances are shorter than the sum of the corresponding van der Waals radii. In the present structure, the most prominent contacts are associated with N—H⋯Cl and C—H⋯Cl interactions, as well as with close contacts between aromatic fragments. The blue regions on the surface correspond to intermolecular distances that exceed the van der Waals separations and therefore make a smaller contribution to the direct association of molecular fragments.
| Figure 4 Hirshfeld surface of (I) mapped over dnorm, highlighting close intermolecular contacts as red spots corresponding to regions of strong hydrogen-bonding interactions. |
The total HS area and volume are 313.6 Å2 and 338.6 Å3, respectively. The two-dimensional fingerprint plot provides a quantitative overview of all pairwise intermolecular contacts in the crystal packing and allows the relative importance of the different interaction types to be assessed (Fig. 5
). The largest contribution to the Hirshfeld surface arises from H⋯Cl/Cl⋯H contacts, accounting for 44.1% [Fig. 5
(b)], which is fully consistent with the chloride-rich nature of the complex and the dominant role of weak hydrogen-bonding and halogen–acceptor interactions in consolidating the packing. Significant contributions are also made by H⋯H contacts [29.9%; Fig. 5
(c)], reflecting van der Waals interactions between non-polar fragments, and H⋯C/C⋯H contacts [15.0%; Fig. 5
(d)], which are generally associated with C—H⋯π interactions and close contacts between aromatic rings.
| | Figure 5 Two-dimensional fingerprint plots for (I), showing all interactions (a) and delineated into selected interactions: (b) H⋯Cl/Cl⋯H, (c) H⋯H, (d) H⋯C/C⋯H and (e) C⋯C, together with their relative contributions to the Hirshfeld surface. |
Smaller, but still noticeable, contributions are provided by C⋯C contacts (3.8%), indicating aromatic stacking; N⋯C/C⋯N (2.5%) and N⋯H/H⋯N (2.3%), reflecting the participation of N atoms in additional weak intermolecular contacts; Cl⋯N/N⋯Cl (1.0%) and Cl⋯C/C⋯Cl (0.7%), corresponding to secondary halogen-containing interactions; and Zn⋯H/H⋯Zn (0.5%) and Cl⋯Cl (0.2%), which make only a minor contribution to the overall packing.
Void analysis based on the promolecular electron density shows that the crystal packing is relatively dense and does not contain an extended channel system (Fig. 6
). The void volume is 160.5 Å3 and its surface area is 549.6 Å2. The identified cavities are localized and do not form a continuous porous network, indicating a predominantly compact packing arrangement in the crystal. Visual inspection of the void surface reveals that no significant voids are present between neighbouring cationic and anionic species owing to strong electrostatic attraction and the network of N—H⋯Cl and C—H⋯Cl hydrogen bonds. Instead, the void surface surrounds the ionic assembly as a whole, indicating that the residual free space is distributed around the cation–anion aggregates rather than being localized between oppositely charged fragments. The presence of such a limited void is consistent with the observed set of weak intermolecular interactions, which link the components into a stable but non-porous supramolecular motif. For density functional theory (DFT) calculations, see supporting information.
| | Figure 6 The void surface of (I). |
5. Database survey
A search of the Cambridge Structural Database (CSD, Version 2026.2.0; Groom et al., 2016
) identified five structurally related complexes. In all of these entries, pyridine or pyridine-derived ligands are present both as coordinated donors and as hydrogen-bonded species, and chloride ions are also structural components. The closest structural analogue is the zinc complex reported by Jin et al. (2005
), in which 2-amino-5-methylpyridine acts as the ligand (CSD refcode FOBKOX). A related ruthenium complex containing the same ligand was also found (Webb et al., 2013
), in which two pyridine molecules are coordinated to the central metal atom together with four chloride ligands, while an additional pyridine molecule is involved in hydrogen-bonding interactions (DIPYAE).
6. Synthesis and crystallization
The following solutions were prepared: (a) an ethanolic solution of a ZnCl2·6H2O (1.0 mmol) and (b) an ethanolic solution of pyridine (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, yielding well-formed yellow single crystals suitable for X-ray diffraction analysis and further physicochemical investigations.
7. Refinement
Crystal data, data collection and structure details are summarized in Table 3
. H atoms bonded to C and N atoms were placed in calculated positions and refined using a riding model, with Uiso(H) = 1.2Ueq(C,N).
|
Supporting information
CCDC reference: 2571358
contains datablock I. DOI: https://doi.org/10.1107/S2056989026007061/hb8233sup1.cif
| (C5H6N)[ZnCl3(C5H5N)] | F(000) = 664 |
| Mr = 330.97 | Dx = 1.590 Mg m−3 |
| Monoclinic, P21/n | Cu Kα radiation, λ = 1.54184 Å |
| a = 7.80795 (16) Å | Cell parameters from 5372 reflections |
| b = 21.3634 (4) Å | θ = 4.1–67.9° |
| c = 8.90581 (18) Å | µ = 7.60 mm−1 |
| β = 111.418 (2)° | T = 293 K |
| V = 1382.94 (5) Å3 | Needle, metallic whiteish yellow |
| Z = 4 | 0.62 × 0.45 × 0.20 mm |
| Rigaku XtaLAB Synergy diffractometer with a HyPix3000 detector | 2517 independent reflections |
| Radiation source: micro-focus sealed X-ray tube, PhotonJet (Cu) X-ray Source | 2205 reflections with I ≥ 2σ(I) |
| Mirror monochromator | Rint = 0.041 |
| Detector resolution: 10.0000 pixels mm-1 | θmax = 68.2°, θmin = 4.1° |
| ω scans | h = −9→9 |
| Absorption correction: gaussian (CrysAlis PRO; Rigaku OD, 2023) | k = −25→25 |
| Tmin = 0.326, Tmax = 1.000 | l = −10→10 |
| 7075 measured reflections |
| Refinement on F2 | 22 constraints |
| Least-squares matrix: full | Primary atom site location: dual |
| R[F2 > 2σ(F2)] = 0.044 | H-atom parameters constrained |
| wR(F2) = 0.126 | w = 1/[σ2(Fo2) + (0.0897P)2 + 0.0322P] where P = (Fo2 + 2Fc2)/3 |
| S = 1.02 | (Δ/σ)max = 0.0004 |
| 2517 reflections | Δρmax = 0.52 e Å−3 |
| 146 parameters | Δρmin = −0.73 e Å−3 |
| 0 restraints |
| x | y | z | Uiso*/Ueq | ||
| Zn1 | 0.78643 (5) | 0.613782 (17) | 0.66895 (4) | 0.0433 (2) | |
| Cl1 | 0.47863 (10) | 0.60198 (4) | 0.58472 (9) | 0.0571 (3) | |
| Cl2 | 0.89575 (11) | 0.67442 (5) | 0.88712 (9) | 0.0681 (3) | |
| Cl3 | 0.91938 (12) | 0.51914 (4) | 0.69616 (13) | 0.0725 (3) | |
| N1 | 0.8423 (3) | 0.65916 (11) | 0.4893 (2) | 0.0421 (5) | |
| N2 | 0.5590 (6) | 0.46271 (15) | 0.7804 (3) | 0.0747 (9) | |
| Hn6 | 0.5897 (6) | 0.48603 (15) | 0.7156 (3) | 0.0896 (11)* | |
| C5 | 0.9977 (4) | 0.64895 (15) | 0.4623 (3) | 0.0506 (7) | |
| H5 | 1.0755 (4) | 0.61691 (15) | 0.5183 (3) | 0.0607 (8)* | |
| C1 | 0.7294 (5) | 0.70374 (14) | 0.4048 (4) | 0.0554 (8) | |
| H1 | 0.6201 (5) | 0.71076 (14) | 0.4213 (4) | 0.0665 (9)* | |
| C4 | 1.0465 (5) | 0.68401 (18) | 0.3550 (4) | 0.0632 (9) | |
| H4 | 1.1572 (5) | 0.67655 (18) | 0.3411 (4) | 0.0758 (10)* | |
| C10 | 0.6846 (6) | 0.42697 (19) | 0.8822 (6) | 0.0783 (11) | |
| H10 | 0.8048 (6) | 0.42715 (19) | 0.8848 (6) | 0.0939 (13)* | |
| C7 | 0.3359 (5) | 0.42816 (17) | 0.8751 (4) | 0.0644 (9) | |
| H7 | 0.2158 (5) | 0.42908 (17) | 0.8726 (4) | 0.0773 (10)* | |
| C2 | 0.7691 (6) | 0.73986 (17) | 0.2938 (4) | 0.0696 (10) | |
| H2 | 0.6874 (6) | 0.77067 (17) | 0.2361 (4) | 0.0835 (12)* | |
| C3 | 0.9304 (6) | 0.73001 (17) | 0.2689 (4) | 0.0697 (10) | |
| H3 | 0.9601 (6) | 0.75414 (17) | 0.1949 (4) | 0.0836 (12)* | |
| C8 | 0.4629 (5) | 0.39052 (18) | 0.9809 (5) | 0.0695 (10) | |
| H8 | 0.4309 (5) | 0.36526 (18) | 1.0516 (5) | 0.0834 (12)* | |
| C6 | 0.3854 (6) | 0.46435 (17) | 0.7731 (4) | 0.0726 (10) | |
| H6 | 0.2995 (6) | 0.49007 (17) | 0.6989 (4) | 0.0872 (12)* | |
| C9 | 0.6370 (6) | 0.3901 (2) | 0.9827 (6) | 0.0858 (13) | |
| H9 | 0.7245 (6) | 0.3640 (2) | 1.0543 (6) | 0.1029 (16)* |
| U11 | U22 | U33 | U12 | U13 | U23 | |
| Zn1 | 0.0393 (3) | 0.0496 (3) | 0.0467 (3) | −0.00122 (14) | 0.0226 (2) | 0.00252 (15) |
| Cl1 | 0.0372 (4) | 0.0717 (5) | 0.0634 (5) | −0.0022 (3) | 0.0195 (3) | 0.0042 (4) |
| Cl2 | 0.0604 (5) | 0.0938 (7) | 0.0588 (4) | −0.0221 (4) | 0.0322 (4) | −0.0225 (4) |
| Cl3 | 0.0638 (5) | 0.0561 (5) | 0.1125 (7) | 0.0155 (4) | 0.0499 (5) | 0.0212 (5) |
| N1 | 0.0444 (12) | 0.0451 (13) | 0.0434 (11) | 0.0006 (9) | 0.0238 (10) | −0.0007 (10) |
| N2 | 0.113 (3) | 0.0635 (19) | 0.0644 (16) | −0.0232 (17) | 0.0528 (18) | −0.0023 (14) |
| C5 | 0.0450 (16) | 0.0613 (19) | 0.0499 (14) | 0.0019 (13) | 0.0226 (13) | 0.0012 (13) |
| C1 | 0.0649 (19) | 0.0510 (18) | 0.0584 (16) | 0.0149 (14) | 0.0320 (15) | 0.0062 (14) |
| C4 | 0.062 (2) | 0.081 (2) | 0.0607 (17) | −0.0117 (17) | 0.0399 (16) | −0.0027 (18) |
| C10 | 0.066 (2) | 0.078 (3) | 0.112 (3) | −0.0001 (19) | 0.057 (2) | 0.005 (2) |
| C7 | 0.0515 (18) | 0.066 (2) | 0.081 (2) | −0.0058 (16) | 0.0311 (17) | −0.0142 (18) |
| C2 | 0.099 (3) | 0.057 (2) | 0.0588 (18) | 0.0164 (18) | 0.035 (2) | 0.0149 (16) |
| C3 | 0.108 (3) | 0.060 (2) | 0.0545 (16) | −0.019 (2) | 0.0451 (19) | −0.0015 (16) |
| C8 | 0.071 (2) | 0.082 (3) | 0.069 (2) | −0.0076 (18) | 0.0407 (19) | 0.0125 (18) |
| C6 | 0.077 (3) | 0.059 (2) | 0.0627 (19) | −0.0010 (18) | 0.0027 (18) | 0.0042 (17) |
| C9 | 0.062 (2) | 0.094 (3) | 0.099 (3) | 0.0122 (19) | 0.026 (2) | 0.034 (2) |
| Zn1—Cl1 | 2.2551 (7) | C4—C3 | 1.367 (5) |
| Zn1—Cl2 | 2.2295 (8) | C10—H10 | 0.9300 |
| Zn1—Cl3 | 2.2451 (9) | C10—C9 | 1.343 (6) |
| Zn1—N1 | 2.049 (2) | C7—H7 | 0.9300 |
| N1—C5 | 1.338 (3) | C7—C8 | 1.355 (5) |
| N1—C1 | 1.328 (4) | C7—C6 | 1.352 (5) |
| N2—Hn6 | 0.8600 | C2—H2 | 0.9300 |
| N2—C10 | 1.311 (5) | C2—C3 | 1.372 (6) |
| N2—C6 | 1.333 (6) | C3—H3 | 0.9300 |
| C5—H5 | 0.9300 | C8—H8 | 0.9300 |
| C5—C4 | 1.373 (4) | C8—C9 | 1.353 (6) |
| C1—H1 | 0.9300 | C6—H6 | 0.9300 |
| C1—C2 | 1.376 (4) | C9—H9 | 0.9300 |
| C4—H4 | 0.9300 | ||
| Cg1···Cg2i | 4.051 (2) | Cg2···Cg2ii | 3.824 (2) |
| Cl2—Zn1—Cl1 | 112.16 (3) | H10—C10—N2 | 120.5 (2) |
| Cl3—Zn1—Cl1 | 109.25 (3) | C9—C10—N2 | 118.9 (4) |
| Cl3—Zn1—Cl2 | 114.48 (4) | C9—C10—H10 | 120.5 (3) |
| N1—Zn1—Cl1 | 107.33 (6) | C8—C7—H7 | 120.3 (2) |
| N1—Zn1—Cl2 | 106.42 (7) | C6—C7—H7 | 120.3 (2) |
| N1—Zn1—Cl3 | 106.76 (7) | C6—C7—C8 | 119.4 (4) |
| C5—N1—Zn1 | 121.9 (2) | H2—C2—C1 | 120.3 (2) |
| C1—N1—Zn1 | 119.67 (18) | C3—C2—C1 | 119.4 (3) |
| C1—N1—C5 | 118.2 (2) | C3—C2—H2 | 120.3 (2) |
| C10—N2—Hn6 | 118.7 (2) | C2—C3—C4 | 118.7 (3) |
| C6—N2—Hn6 | 118.7 (2) | H3—C3—C4 | 120.67 (19) |
| C6—N2—C10 | 122.6 (3) | H3—C3—C2 | 120.7 (2) |
| H5—C5—N1 | 118.77 (17) | H8—C8—C7 | 120.4 (2) |
| C4—C5—N1 | 122.5 (3) | C9—C8—C7 | 119.3 (4) |
| C4—C5—H5 | 118.8 (2) | C9—C8—H8 | 120.4 (2) |
| H1—C1—N1 | 118.92 (16) | C7—C6—N2 | 119.2 (3) |
| C2—C1—N1 | 122.2 (3) | H6—C6—N2 | 120.4 (2) |
| C2—C1—H1 | 118.9 (2) | H6—C6—C7 | 120.4 (2) |
| H4—C4—C5 | 120.4 (2) | C8—C9—C10 | 120.6 (4) |
| C3—C4—C5 | 119.1 (3) | H9—C9—C10 | 119.7 (3) |
| C3—C4—H4 | 120.44 (19) | H9—C9—C8 | 119.7 (2) |
| Zn1—N1—C5—C4 | −172.4 (2) | C5—C4—C3—C2 | 0.5 (4) |
| Zn1—N1—C1—C2 | 173.6 (2) | C1—N1—C5—C4 | 2.1 (3) |
| N1—C5—C4—C3 | −1.8 (4) | C1—C2—C3—C4 | 0.5 (4) |
| N1—C1—C2—C3 | −0.2 (4) | C10—N2—C6—C7 | 0.4 (4) |
| N2—C10—C9—C8 | −1.1 (5) | C10—C9—C8—C7 | 0.7 (6) |
| N2—C6—C7—C8 | −0.8 (4) | C6—N2—C10—C9 | 0.5 (4) |
| C5—N1—C1—C2 | −1.1 (3) | C6—C7—C8—C9 | 0.2 (4) |
| Symmetry codes: (i) −x+1, −y+1, −z+1; (ii) −x+1, −y+1, −z+2. |
| D—H···A | D—H | H···A | D···A | D—H···A |
| N2—HN6···Cl1 | 0.86 (1) | 2.74 (1) | 3.389 (3) | 133 (1) |
| N2—HN6···Cl3 | 0.86 (1) | 2.74 (1) | 3.388 (5) | 134 (1) |
| C8—H8···Cl2ii | 0.93 (1) | 2.92 (1) | 3.681 (5) | 140 (1) |
| C9—H9···Cl2iii | 0.93 (1) | 2.93 (1) | 3.669 (5) | 137 (1) |
| Symmetry codes: (ii) −x+1, −y+1, −z+2; (iii) −x+2, −y+1, −z+2. |
Acknowledgements
We thank the Institute of Bioorganic Chemistry of the Academy of Sciences of Uzbekistan for access to the XtaLAB Synergy-S X-ray diffractometer.
References
Addison, A. W., Rao, T. N., Reedijk, J., van Rijn, J. & Verschoor, G. C. (1984). J. Chem. Soc. Dalton Trans. pp. 1345–1356. Google Scholar
Albrecht, A. S., Landee, C. P. & Turnbull, M. M. (2003). J. Chem. Crystallogr. 33, 269–276. Web of Science CrossRef CAS Google Scholar
Bourhis, L. J., Dolomanov, O. V., Gildea, R. J., Howard, J. A. K. & Puschmann, H. (2015). Acta Cryst. A71, 59–75. Web of Science CrossRef IUCr Journals Google Scholar
Cotton, F. A., Duraj, S. A. & Roth, W. J. (1985). Inorg. Chem. 24, 913–917. CrossRef CAS Web of Science Google Scholar
de la Mata Moratilla, S., Casado Angulo, S., Gómez-Casanova, N., Copa-Patiño, J. L., Heredero-Bermejo, I., de la Mata, F. J. & García-Gallego, S. (2024). Int. J. Mol. Sci. 25, 4011. Web of Science CrossRef PubMed Google Scholar
Dolomanov, O. V., Bourhis, L. J., Gildea, R. J., Howard, J. A. K. & Puschmann, H. (2009). J. Appl. Cryst. 42, 339–341. Web of Science CrossRef CAS IUCr Journals Google Scholar
El-Naggar, M. Y., Barakat, K. M., Aly-Eldeen, M. A., Ghoneim, H. B. & Hamdan, A. M. (2021). Egypt. J. Aquat. Biol. Fish. 25, 1–19. Google Scholar
Elsayed, M. A., Elsayed, A. M. & Sroor, F. M. (2024). Med. Chem. Res. 33, 476–491. Web of Science CrossRef CAS Google Scholar
Groom, C. R., Bruno, I. J., Lightfoot, M. P. & Ward, S. C. (2016). Acta Cryst. B72, 171–179. Web of Science CrossRef IUCr Journals Google Scholar
Jin, Z.-M., Tu, B., He, L., Hu, M.-L. & Zou, J.-W. (2005). Acta Cryst. C61, m197–m199. Web of Science CrossRef CAS IUCr Journals Google Scholar
Khan, E. (2021). ChemistrySelect 6, 3041–3064. Web of Science CrossRef CAS Google Scholar
Kokunov, Y. V., Gorbunova, Y. E. & Kovalev, V. V. (2009). Russ. J. Inorg. Chem. 54, 1603–1610. Web of Science CrossRef Google Scholar
Modec, B. (2018). Crystals 8, 52. Web of Science CrossRef Google Scholar
Porchia, M., Pellei, M., Del Bello, F. & Santini, C. (2020). Molecules 25, 5814. Web of Science CrossRef PubMed Google Scholar
Rigaku OD (2023). CrysAlis PRO. Rigaku Oxford Diffraction Ltd, Yarnton, Oxfordshire, England. Google Scholar
Sheldrick, G. M. (2015). Acta Cryst. A71, 3–8. Web of Science CrossRef IUCr Journals Google Scholar
Spackman, P. R., Turner, M. J., McKinnon, J. J., Wolff, S. K., Grimwood, D. J., Jayatilaka, D. & Spackman, M. A. (2021). J. Appl. Cryst. 54, 1006–1011. Web of Science CrossRef CAS IUCr Journals Google Scholar
Sun, Y. X., Zhang, W. Z., Li, J., Zhang, Y. & Dong, W. K. (2022). Inorg. Chim. Acta 531, 120723. Web of Science CrossRef Google Scholar
Temple, C. Jr, Rener, G. A., Waud, W. R. & Noker, P. E. (1992). J. Med. Chem. 35, 3686–3690. CrossRef PubMed CAS Web of Science Google Scholar
Webb, M. I., Wu, B., Jang, T., Chard, R. A., Wong, E. W., Wong, M. Q., Yapp, D. T. T. & Walsby, C. J. (2013). Chem. Eur. J. 19, 17031–17042. Web of Science CrossRef CAS PubMed Google Scholar
Xun-Zhong, Z., An-Sheng, F., Fu-Ran, Z., Min-Cheng, L., Yan-Zhi, L., Meng, M. & Yu, L. (2020). Bioinorg. Chem. Appl. 2020, 1–9. Google Scholar
Zou, X., Shi, P., Feng, A., Mei, M. & Li, Y. (2021). Transition Met. Chem. 46, 263–272. Web of Science CrossRef CAS Google Scholar
This is an open-access article distributed under the terms of the Creative Commons Attribution (CC-BY) Licence, which permits unrestricted use, distribution, and reproduction in any medium, provided the original authors and source are cited.

journal menu
access



