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

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ISSN: 2056-9890

2,2′-(Ethane-1,2-di­yl)bis­­[3-(pyridin-2-yl)imidazo[1,5-a]pyridin-2-ium] dichloride hexa­hydrate

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aDepartment of Chemistry, Taras Shevchenko National University of Kyiv, 12 Hetman Pavlo Skoropadskyi St., 01033 Kyiv, Ukraine, and bDepartment of Inorganic Chemistry and Technology, Jozef Stefan, Institute, Jamova 39, 1000 Ljubljana, Slovenia
*Correspondence e-mail: [email protected]

Edited by J. Reibenspies, Texas A & M University, USA (Received 22 July 2026; accepted 2 September 2026; online 11 September 2026)

The title compound, C26H22N62+·2Cl−·6H2O, crystallizes in the monoclinic space group P21/n with one mol­ecule in the asymmetric unit. Structure determination at 150 K from a two-component twin crystal reveals the non-symmetrical n-shaped dication, where two pyridine–imidazole fused cores bearing pendant pyridyl rings are linked by an ethyl­ene bridge. The fused five- and six-membered rings are almost coplanar with the largest deviation from the mean plane being 0.019 Å for a nitro­gen atom of one of the rings. The pendant pyridyl groups are twisted by 42.14 (11) and 46.47 (11)° with respect to the planes of the adjacent imidazo[1,5-a]pyridinium cores. In the crystal, the dications stacked along the b-axis direction are linked by π–π inter­actions that possibly stabilize the n-type structure in the solid state. The chloride anions and water mol­ecules form R24(8), R55(12), R66(12) and R811(22) ring motifs through O—H⋯O/Cl hydrogen bonds, building corrugated layers that run between columns of the stacked organic dications.

1. Chemical context

Versatile optoelectronic properties, structural richness, and low temperature solution processability make organic–inorganic hybrid compounds based on metal halides an appealing alternative to conventional photovoltaic devices that utilize crystalline silicon solar cells (Zhu et al., 2022View full citation). Hybrid halometalates have been also actively researched for other applications as promising materials for light-emitting diodes (LEDs), semiconductor optical amplifiers, X-ray detectors, and lasers (Arya et al., 2024View full citation; You et al., 2023View full citation). The choice of appropriate organic cation is crucial to the structural consolidation and performance of the organic–inorganic hybrid system (Kucheriv et al., 2025View full citation).

Recently, we have developed a convenient synthetic technique to prepare hybrid salts consisting of functionalized imidazo[1,5-a]pyridinium cations and halometalate anions (Vassilyeva et al., 2020View full citation, 2023View full citation). The fused nitro­gen-containing bicyclic systems, imidazo[1,5-a]pyridines, are valuable in many research areas including materials science and pharmaceuticals (Esken et al., 2025View full citation; Gopathi et al., 2025View full citation). They exhibit intense fluorescence and high quantum yield (Volpi, 2022View full citation; Vasylets et al., 2026View full citation). In the developed synthetic procedure, the cation is produced in the inter­action between equimolar amounts of amine, formaldehyde (FA) and 2-pyridine­carbaldehyde (2-PCA) in aqueous solution and is used without isolation (Vassilyeva et al., 2020View full citation, 2021View full citation, 2023View full citation). The cyclo­condensation is catalysed by acid introduced as an adduct of the amine. The preformed cations synthesized with use of methyl­amine or ethano­lamine hydro­chlorides easily formed organic–inorganic hybrid compounds with metal halides (M = Mn, Co, Fe, Ni, Cu, Zn, Cd, Pb, Sn; Hal = Cl, Br, I). A similar outcome was expected for PdCl2, which willingly produces organic–inorganic hybrid salts based on the square-planar [PdCl4]2– anion (Salah et al., 2023View full citation). The replacement of the amine with ethyl­enedi­amine (En) in the reaction with PdCl2 using the molar ratio 2-PCA:FA:En·2HCl = 4:4:1 led to the isolation of the unexpected organic chloride salt with a novel imidazo[1,5-a]pyridinium-based dication as a minor product, whose identity was established crystallographically. We can speculate that the intrinsic catalytic activity of Pd2+ cations was responsible for its formation. Herein, we report the synthesis and crystal structure of [L]Cl2·6H2O (I)[link], where [L]2+ is 2,2′-(ethane-1,2-di­yl)bis­(3-(pyridin-2-yl)imidazo[1,5-a]pyridin-2-ium) dication, which crystallizes as a two-component twin.

[Scheme 1]

2. Structural commentary

Monoclinic crystals of [L]Cl2·6H2O, which crystallize in the space group P21/n, contain discrete organic cations, chloride anions and water mol­ecules of crystallization (Fig. 1[link]). In the n-shaped dication, two pyridine–imidazole fused cores bearing pendant pyridyl rings are linked by an ethyl­ene bridge. The pyridinium rings in the flattened fused moieties have expected bond distances; the bond lengths in the imidazolium entities fall in the range 1.342 (3)–1.407 (3) Å (Table 1[link]). The fused five- and six-membered rings are almost coplanar, with the largest deviation from the mean plane being 0.019 Å (N5). The pendant pyridyl rings are twisted by 42.14 (11) (N1) and 46.47 (11)° (N6) with respect to the planes of the adjacent imidazo[1,5-a]pyridinium cores. The geometric parameters of the 3-(pyridin-2-yl)-imidazo[1,5-a]pyridinium moieties in the dication are similar to those found in related structures [Cambridge Structural Database (CSD) refcodes HUMCUP (Buvaylo et al., 2015View full citation) and GOSYUL (Vassilyeva et al., 2021View full citation)].

Table 1
Selected bond lengths (Å)

N1—C1 1.342 (4) C4—C5 1.378 (4)
N1—C5 1.352 (3) C5—C6 1.477 (4)
N2—C6 1.342 (3) C7—C8 1.340 (4)
N2—C7 1.392 (3) C8—C9 1.423 (4)
N2—C11 1.407 (3) C9—C10 1.355 (4)
N3—C6 1.351 (3) C10—C11 1.411 (4)
N3—C12 1.361 (3) C11—C12 1.360 (4)
N3—C13 1.479 (3) C13—C14 1.505 (4)
N4—C14 1.464 (3) C15—C22 1.475 (4)
N4—C15 1.352 (3) C16—C17 1.340 (4)
N4—C21 1.364 (3) C17—C18 1.425 (4)
N5—C15 1.345 (3) C18—C19 1.342 (4)
N5—C16 1.395 (3) C19—C20 1.416 (4)
N5—C20 1.397 (3) C20—C21 1.363 (4)
N6—C22 1.346 (3) C22—C23 1.377 (4)
N6—C26 1.334 (3) C23—C24 1.382 (4)
C1—C2 1.380 (4) C24—C25 1.368 (4)
C2—C3 1.366 (4) C25—C26 1.372 (4)
C3—C4 1.396 (4)    
[Figure 1]
Figure 1
Mol­ecular structure of the title mol­ecular salt, with the atom labelling and displacement ellipsoids drawn at the 50% probability level.

3. Supra­molecular features

In the crystal, the dications are arranged in stacks aligned along the b-axis direction (Fig. 2[link]). In a stack, L2+ cations are disposed in an anti­parallel fashion being linked through two types of stacking contacts. Those involve π–π inter­actions between pendant pyridyl groups and between the six-membered rings of the fused cores from adjacent organic moieties with the centroid⋯centroid distances of 4.043 (2) and 3.522 (2) Å, respectively (Fig. 3[link]). The aromatic stacking is possibly important in the stabilization of the n-type structure of the dication in the solid state.

[Figure 2]
Figure 2
Crystal packing of (I)[link], viewed along the b axis, showing stacks of organic dications between hydrogen-bonding corrugated layers formed by chloride anions and water mol­ecules. Hydrogen bonds are shown in blue.
[Figure 3]
Figure 3
Aromatic stacking of the dications in (I)[link], viewed along the c axis.

The chloride ions and water mol­ecules are involved in the O—H⋯O/Cl inter­actions (Table 2[link]), forming a hydrogen-bonding corrugated layer that runs approximately along the diagonal plane of the monoclinic cell containing the b axis, between columns of the stacked dications (Figs. 2[link] and 4[link]). Using graph-set notation, there are several different hydrogen-bonding ring motifs: R42(8) (two water mol­ecules and two chlorides), R55(12) (five waters and a chloride), R66(12) (six waters), R118(22) (eight waters and three chlorides) (Fig. 5[link]).

Table 2
Hydrogen-bond geometry (Å, °)

D—H⋯A D—H H⋯A D⋯A D—H⋯A
O1—H1A⋯O5 0.87 1.89 2.754 (3) 170
O2—H2A⋯O1 0.87 2.04 2.891 (4) 164
O2—H2B⋯O6 0.87 1.90 2.739 (3) 161
O3—H3A⋯Cl2i 0.87 2.26 3.119 (2) 169
O3—H3B⋯O2 0.87 1.88 2.737 (4) 169
O5—H5A⋯O4 0.87 1.90 2.758 (3) 169
O5—H5B⋯Cl1ii 0.87 2.25 3.117 (2) 176
O6—H6A⋯O3i 0.87 1.84 2.705 (3) 175
O6—H6B⋯Cl1 0.87 2.21 3.081 (2) 175
Symmetry codes: (i) Mathematical equation; (ii) Mathematical equation.
[Figure 4]
Figure 4
Fragment of the hydrogen-bonding layer in (I)[link], involving chloride anions and water mol­ecules and propagating approximately along the diagonal plane of the monoclinic cell containing the b axis (see Table 2[link] for details).
[Figure 5]
Figure 5
View of the R42(8), R55(12), R66(12) and R118(22) graph-set motifs forming closed rings through O—H⋯O/Cl hydrogen bonds between chloride anions and water mol­ecules in (I)[link].

4. Database survey

120 structures of compounds featuring the 3-(pyridin-2-yl)imidazo[1,5-a]pyridine fragment are found in the CSD (Version 5.45, update Mar 2026; Groom et al., 2016View full citation) including the structure of neutral 3-(pyridin-2-yl)imidazo[1,5-a]pyridine itself (PRIMPY; Golič et al., 1980View full citation). Unlike compound (I)[link], the mol­ecule of the latter as a whole is planar with the largest deviation from the mean plane of 0.06 Å for the pendant pyridyl group N atom (PRIMPY02; Tian et al., 2026View full citation). PRIMPY and its derivatives as ligands create a favourable coordination environment for cation binding through the pyridyl and imidazo ring nitro­gens giving rise to a variety of metal complexes. For example, in chloro-bis­(3-(pyridin-2-yl)imidazo[1,5-a]pyridine)­copper(II) chloride ethanol solvate (ELILOD; Carson et al., 2021View full citation), the ligands retain planarity upon coordination.

Functionalization of 3-(pyridin-2-yl)imidazo[1,5-a]pyridine at the imidazo ring nitro­gen turns the neutral mol­ecule into organic cation thus encouraging formation of organic–inorganic halometalate salts. 14 crystal structures from our research span hybrid halometalates, metal complexes (LOJFUO and HOMZER, respectively; Vassilyeva et al., 2019aView full citation) and organic salts (HOMZER; Vassilyeva et al., 2019bView full citation) with the monopositive 2-methyl-3-(pyridin-2-yl)imidazo[1,5-a]pyridin-2-ium cation, which can be seen as half of L2+. The structural configurations of the monopositive cation with a flattened fused core are similar to that of L2+ with the degree of twist between the pendant pyridyl rings and the planes of the remainder of the cation as large as 85.30 (3)° (HUMCUP; Buvaylo et al., 2015View full citation).

5. Synthesis and crystallization

Formaldehyde solution was prepared by dissolving paraform (0.13 g, 4.5 mmol) in 10 ml boiling deionized water in a 50 ml conical flask. After cooling at r.t., solid En·2HCl (0.26 g, 1.2 mmol) was added to the FA solution, which was stirred at r.t. for half an hour and then filtered. In a week, 2-PCA (0.38 ml, 4 mmol) was introduced into the flask followed by subsequent dropwise addition of PdCl2 (0.35 g, 2 mmol) dissolved in CH3CN (5 ml). The brownish solution was kept stirring for 1 h, then filtered and left open to stand at r.t. The inseparable mixture of a dark residue and light yellow crystals precipitated over several weeks. The precipitate was filtered off, washed with iPrOH and finally dried in air. Yellow needles of (I)[link] suitable for X-ray crystallography that constituted a minor product were withdrawn manually.

6. Refinement

Crystal data, data collection and structure refinement details are summarized in Table 3[link]. The structure was refined as a two-component twin with a ratio of 0.7078 (12):0.2922 (12). Component 2 is rotated by −179.9853° around [0.71 −0.00 −0.71] (reciprocal) or [0.99 0.00 −0.14] (direct). H atoms of the water mol­ecules were located in a difference-Fourier map and refined as free rotating groups. Anisotropic displacement parameters were employed for the non-hydrogen atoms. The H atoms attached to carbon atoms were added at calculated positions and refined as riding with isotropic displacement parameters based on those of the parent atom [C—H = 0.95 Å, Uiso(H) = 1.2Ueq(C) for CH; C—H = 0.99 Å, Uiso(H) = 1.5Ueq(C) for CH2].

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Table 3
Experimental details

Crystal data
Chemical formula C26H22N62+·2(Cl−)·6(H2O)
Mr 597.49
Crystal system, space group Monoclinic, P21/n
Temperature (K) 150
a, b, c (Å) 9.0061 (7), 15.1053 (10), 21.2487 (14)
β (°) 96.752 (7)
V (Å3) 2870.6 (3)
Z 4
Radiation type Mo Kα
μ (mm−1) 0.28
Crystal size (mm) 0.38 × 0.09 × 0.05
 
Data collection
Diffractometer New Gemini, Dual, Cu at home/near, Atlas
Absorption correction Analytical (CrysAlis PRO; Rigaku OD, 2026View full citation)
Tmin, Tmax 0.933, 0.980
No. of measured, independent and observed [I > 2σ(I)] reflections 6542, 6542, 3396
Rint ?
(sin θ/λ)max (Å−1) 0.678
 
Refinement
R[F2 > 2σ(F2)], wR(F2), S 0.051, 0.091, 0.86
No. of reflections 6542
No. of parameters 380
H-atom treatment H-atom parameters constrained
Δρmax, Δρmin (e Å−3) 0.27, −0.34
Computer programs: CrysAlis PRO (Rigaku OD, 2026View full citation), SHELXT (Sheldrick, 2015aView full citation), SHELXL2016/6 (Sheldrick, 2015bView full citation), OLEX2 (Dolomanov et al., 2009View full citation) and Mercury (Macrae et al., 2020View full citation).

Supporting information


Computing details top

2,2'-(Ethane-1,2-diyl)bis[3-(pyridin-2-yl)imidazo[1,5-a]pyridin-2-ium] dichloride hexahydrate top
Crystal data top
C26H22N62+·2(Cl−)·6(H2O)F(000) = 1256
Mr = 597.49Dx = 1.382 Mg m−3
Monoclinic, P21/nMo Kα radiation, λ = 0.71073 Å
a = 9.0061 (7) ÅCell parameters from 3978 reflections
b = 15.1053 (10) Åθ = 2.9–27.3°
c = 21.2487 (14) ŵ = 0.28 mm−1
β = 96.752 (7)°T = 150 K
V = 2870.6 (3) Å3Needle, yellow
Z = 40.38 × 0.09 × 0.05 mm
Data collection top
New Gemini, Dual, Cu at home/near, Atlas
diffractometer
6542 measured reflections
Radiation source: fine-focus sealed X-ray tube, Enhance (Mo) X-ray Source6542 independent reflections
Graphite monochromator3396 reflections with I > 2σ(I)
Detector resolution: 10.6426 pixels mm-1θmax = 28.8°, θmin = 2.4°
ω scansh = −9→12
Absorption correction: analytical
(CrysAlisPro; Rigaku OD, 2026)
k = −20→20
Tmin = 0.933, Tmax = 0.980l = −27→27
Refinement top
Refinement on F2Primary atom site location: dual
Least-squares matrix: fullHydrogen site location: mixed
R[F2 > 2σ(F2)] = 0.051H-atom parameters constrained
wR(F2) = 0.091 w = 1/[σ2(Fo2) + (0.0354P)2]
where P = (Fo2 + 2Fc2)/3
S = 0.86(Δ/σ)max < 0.001
6542 reflectionsΔρmax = 0.27 e Å−3
380 parametersΔρmin = −0.34 e Å−3
0 restraints
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.

Refinement. Refined as a 2-component twin.

Fractional atomic coordinates and isotropic or equivalent isotropic displacement parameters (Å2) top
xyzUiso*/Ueq
Cl10.34159 (8)0.44925 (5)0.27864 (3)0.02028 (19)
Cl20.34229 (8)0.12488 (5)0.45445 (4)0.02505 (19)
O10.3969 (2)0.69367 (14)0.30924 (12)0.0397 (7)
H1A0.3913390.7511960.3096240.060*
O20.3441 (3)0.65200 (15)0.43752 (12)0.0498 (7)
H2A0.3786370.6655170.4021410.075*
H2B0.3416520.5947250.4415370.075*
O30.6113 (3)0.67544 (13)0.51139 (11)0.0349 (6)
H3A0.6312770.7285340.5258200.052*
H3B0.5229420.6748980.4897630.052*
O40.3695 (3)0.91568 (14)0.44330 (11)0.0399 (6)
H4A0.4454180.9025450.4709260.060*
H4B0.3611420.9729620.4458530.060*
O50.4114 (2)0.87522 (14)0.32004 (10)0.0254 (5)
H5A0.3934420.8943520.3570440.038*
H5B0.3410900.8986190.2935890.038*
O60.3141 (2)0.47281 (13)0.42080 (10)0.0274 (5)
H6A0.3434030.4263100.4430870.041*
H6B0.3264150.4638050.3812800.041*
N10.7510 (2)0.75581 (14)0.31869 (11)0.0137 (6)
N20.7252 (2)0.79911 (14)0.18463 (11)0.0117 (5)
N30.9513 (2)0.75222 (14)0.18391 (11)0.0136 (6)
N41.0080 (2)0.58519 (14)0.25551 (10)0.0115 (5)
N50.8298 (2)0.55106 (14)0.31092 (10)0.0102 (5)
N60.6229 (2)0.59715 (14)0.19762 (11)0.0154 (6)
C10.7612 (3)0.75961 (18)0.38213 (15)0.0208 (7)
H10.6777030.7405530.4020760.025*
C20.8859 (3)0.78960 (19)0.42009 (14)0.0211 (8)
H20.8882130.7893700.4649080.025*
C31.0059 (3)0.81963 (18)0.39254 (14)0.0215 (8)
H31.0931050.8403120.4177610.026*
C40.9977 (3)0.81926 (18)0.32654 (13)0.0173 (7)
H41.0777200.8415620.3057840.021*
C50.8707 (3)0.78580 (17)0.29215 (13)0.0116 (7)
C60.8515 (3)0.78033 (17)0.22228 (13)0.0121 (7)
C70.5893 (3)0.83128 (17)0.20013 (14)0.0161 (7)
H70.5756350.8435490.2429230.019*
C80.4782 (3)0.84457 (18)0.15337 (14)0.0212 (7)
H80.3851700.8662970.1637850.025*
C90.4944 (3)0.82734 (19)0.08866 (15)0.0234 (8)
H90.4130010.8372780.0567470.028*
C100.6264 (3)0.79669 (19)0.07286 (14)0.0214 (8)
H100.6388200.7853410.0298100.026*
C110.7453 (3)0.78182 (18)0.12115 (13)0.0150 (7)
C120.8885 (3)0.75273 (17)0.12243 (14)0.0150 (7)
H120.9362910.7357640.0867390.018*
C131.1011 (3)0.71386 (18)0.20266 (14)0.0162 (7)
H13A1.1414040.7366860.2449200.019*
H13B1.1697800.7322090.1719450.019*
C141.0936 (3)0.61436 (17)0.20481 (13)0.0134 (6)
H14A1.0457550.5917350.1636190.016*
H14B1.1961540.5898220.2121020.016*
C150.8620 (3)0.56256 (16)0.25123 (13)0.0101 (6)
C160.6964 (3)0.52366 (17)0.33213 (14)0.0149 (7)
H160.6109150.5105400.3030190.018*
C170.6923 (3)0.51638 (18)0.39477 (14)0.0212 (7)
H170.6019200.4981980.4098920.025*
C180.8192 (3)0.53505 (18)0.43937 (14)0.0200 (7)
H180.8119860.5300070.4834750.024*
C190.9489 (3)0.55973 (18)0.41937 (13)0.0169 (7)
H191.0339910.5715710.4489940.020*
C200.9570 (3)0.56788 (17)0.35347 (13)0.0129 (7)
C211.0676 (3)0.58904 (17)0.31752 (13)0.0132 (7)
H211.1679190.6037880.3328410.016*
C220.7543 (3)0.55631 (17)0.19346 (12)0.0115 (6)
C230.7883 (3)0.51304 (17)0.13998 (13)0.0159 (7)
H230.8811200.4831980.1397620.019*
C240.6847 (3)0.51395 (19)0.08661 (14)0.0230 (8)
H240.7055560.4861080.0485410.028*
C250.5512 (3)0.5559 (2)0.08991 (14)0.0253 (8)
H250.4780770.5580640.0538760.030*
C260.5239 (3)0.59480 (18)0.14577 (14)0.0197 (7)
H260.4291190.6216060.1476040.024*
H1B0.4948000.6790000.2997000.030*
Atomic displacement parameters (Å2) top
U11U22U33U12U13U23
Cl10.0174 (4)0.0227 (4)0.0209 (4)−0.0004 (3)0.0030 (3)−0.0044 (3)
Cl20.0263 (5)0.0283 (4)0.0213 (4)−0.0060 (4)0.0059 (4)−0.0017 (4)
O10.0234 (14)0.0268 (13)0.0667 (18)0.0002 (11)−0.0040 (13)0.0101 (13)
O20.0586 (18)0.0339 (15)0.0542 (18)−0.0039 (14)−0.0043 (15)0.0069 (12)
O30.0443 (17)0.0280 (13)0.0326 (15)0.0009 (12)0.0061 (12)−0.0006 (11)
O40.0471 (18)0.0340 (14)0.0351 (15)0.0009 (12)−0.0100 (13)−0.0082 (11)
O50.0195 (13)0.0286 (12)0.0269 (13)0.0043 (10)−0.0021 (10)−0.0017 (11)
O60.0337 (14)0.0309 (13)0.0184 (12)−0.0023 (11)0.0059 (11)0.0035 (10)
N10.0145 (15)0.0156 (13)0.0127 (14)0.0017 (10)0.0081 (12)0.0011 (11)
N20.0109 (14)0.0112 (13)0.0139 (14)0.0023 (10)0.0052 (12)0.0012 (11)
N30.0104 (14)0.0138 (13)0.0176 (15)0.0028 (10)0.0061 (12)0.0018 (11)
N40.0087 (14)0.0147 (13)0.0114 (13)0.0034 (10)0.0023 (11)0.0011 (10)
N50.0079 (13)0.0127 (12)0.0103 (13)−0.0016 (11)0.0020 (11)0.0000 (11)
N60.0088 (14)0.0169 (13)0.0208 (14)0.0005 (11)0.0025 (11)−0.0003 (11)
C10.0193 (19)0.0221 (18)0.0225 (19)0.0014 (14)0.0089 (16)0.0002 (14)
C20.026 (2)0.0214 (18)0.0174 (18)0.0023 (15)0.0067 (16)−0.0010 (14)
C30.0220 (19)0.0204 (18)0.0219 (19)−0.0044 (14)0.0020 (15)−0.0025 (14)
C40.0153 (18)0.0197 (17)0.0183 (18)−0.0031 (13)0.0075 (14)0.0012 (14)
C50.0103 (17)0.0092 (14)0.0161 (17)0.0048 (12)0.0044 (13)−0.0006 (13)
C60.0124 (17)0.0076 (14)0.0171 (17)−0.0015 (12)0.0049 (14)0.0016 (13)
C70.0107 (17)0.0148 (16)0.0248 (18)0.0022 (13)0.0110 (15)0.0023 (14)
C80.0151 (18)0.0177 (17)0.0309 (19)0.0050 (13)0.0038 (16)0.0054 (14)
C90.0200 (19)0.0222 (18)0.0264 (19)0.0052 (14)−0.0039 (15)0.0065 (15)
C100.028 (2)0.0209 (18)0.0159 (18)0.0040 (15)0.0059 (16)0.0064 (14)
C110.0174 (18)0.0147 (16)0.0143 (17)0.0017 (13)0.0075 (14)0.0040 (13)
C120.0140 (18)0.0169 (17)0.0146 (18)0.0005 (13)0.0043 (14)0.0016 (13)
C130.0069 (17)0.0240 (17)0.0179 (17)0.0013 (13)0.0026 (13)0.0036 (14)
C140.0049 (15)0.0236 (17)0.0120 (15)−0.0006 (13)0.0021 (12)−0.0001 (14)
C150.0083 (16)0.0077 (14)0.0148 (16)0.0022 (12)0.0035 (13)0.0005 (13)
C160.0092 (16)0.0150 (15)0.0215 (18)0.0014 (13)0.0052 (14)0.0045 (13)
C170.0175 (18)0.0211 (17)0.028 (2)0.0068 (14)0.0169 (16)0.0109 (15)
C180.0234 (19)0.0227 (18)0.0152 (17)0.0096 (14)0.0076 (15)0.0060 (14)
C190.0203 (19)0.0207 (17)0.0095 (16)0.0059 (14)0.0007 (14)0.0000 (13)
C200.0112 (17)0.0128 (16)0.0146 (16)0.0051 (12)0.0013 (13)0.0009 (13)
C210.0080 (16)0.0157 (16)0.0144 (16)0.0009 (12)−0.0045 (14)0.0018 (12)
C220.0107 (16)0.0087 (14)0.0151 (16)−0.0024 (13)0.0008 (13)0.0015 (13)
C230.0102 (16)0.0159 (16)0.0215 (18)0.0015 (13)0.0020 (14)−0.0026 (14)
C240.027 (2)0.0253 (18)0.0159 (18)−0.0056 (15)−0.0002 (15)−0.0093 (14)
C250.023 (2)0.0314 (19)0.0185 (18)−0.0032 (16)−0.0101 (15)−0.0011 (16)
C260.0077 (16)0.0232 (18)0.0264 (19)−0.0035 (13)−0.0055 (14)0.0035 (14)
Geometric parameters (Å, º) top
O1—H1A0.8705C5—C61.477 (4)
O1—H1B0.954 (2)C7—H70.9500
O2—H2A0.8710C7—C81.340 (4)
O2—H2B0.8699C8—H80.9500
O3—H3A0.8698C8—C91.423 (4)
O3—H3B0.8708C9—H90.9500
O4—H4A0.8702C9—C101.355 (4)
O4—H4B0.8707C10—H100.9500
O5—H5A0.8705C10—C111.411 (4)
O5—H5B0.8706C11—C121.360 (4)
O6—H6A0.8706C12—H120.9500
O6—H6B0.8707C13—H13A0.9900
N1—C11.342 (4)C13—H13B0.9900
N1—C51.352 (3)C13—C141.505 (4)
N2—C61.342 (3)C14—H14A0.9900
N2—C71.392 (3)C14—H14B0.9900
N2—C111.407 (3)C15—C221.475 (4)
N3—C61.351 (3)C16—H160.9500
N3—C121.361 (3)C16—C171.340 (4)
N3—C131.479 (3)C17—H170.9500
N4—C141.464 (3)C17—C181.425 (4)
N4—C151.352 (3)C18—H180.9500
N4—C211.364 (3)C18—C191.342 (4)
N5—C151.345 (3)C19—H190.9500
N5—C161.395 (3)C19—C201.416 (4)
N5—C201.397 (3)C20—C211.363 (4)
N6—C221.346 (3)C21—H210.9500
N6—C261.334 (3)C22—C231.377 (4)
C1—H10.9500C23—H230.9500
C1—C21.380 (4)C23—C241.382 (4)
C2—H20.9500C24—H240.9500
C2—C31.366 (4)C24—C251.368 (4)
C3—H30.9500C25—H250.9500
C3—C41.396 (4)C25—C261.372 (4)
C4—H40.9500C26—H260.9500
C4—C51.378 (4)
H1A—O1—H1B106.8C12—C11—C10134.7 (3)
H2A—O2—H2B109.5N3—C12—H12126.1
H3A—O3—H3B109.5C11—C12—N3107.9 (3)
H4A—O4—H4B104.6C11—C12—H12126.1
H5A—O5—H5B104.5N3—C13—H13A109.5
H6A—O6—H6B109.5N3—C13—H13B109.5
C1—N1—C5116.2 (2)N3—C13—C14110.9 (2)
C6—N2—C7129.8 (2)H13A—C13—H13B108.0
C6—N2—C11109.7 (2)C14—C13—H13A109.5
C7—N2—C11120.5 (2)C14—C13—H13B109.5
C6—N3—C12110.3 (2)N4—C14—C13110.6 (2)
C6—N3—C13127.7 (2)N4—C14—H14A109.5
C12—N3—C13121.6 (2)N4—C14—H14B109.5
C15—N4—C14128.2 (2)C13—C14—H14A109.5
C15—N4—C21110.2 (2)C13—C14—H14B109.5
C21—N4—C14121.1 (2)H14A—C14—H14B108.1
C15—N5—C16129.2 (2)N4—C15—C22127.7 (2)
C15—N5—C20109.6 (2)N5—C15—N4106.6 (2)
C16—N5—C20121.1 (2)N5—C15—C22125.7 (2)
C26—N6—C22116.1 (2)N5—C16—H16121.0
N1—C1—H1118.1C17—C16—N5118.1 (3)
N1—C1—C2123.8 (3)C17—C16—H16121.0
C2—C1—H1118.1C16—C17—H17119.0
C1—C2—H2120.4C16—C17—C18122.1 (3)
C3—C2—C1119.3 (3)C18—C17—H17119.0
C3—C2—H2120.4C17—C18—H18119.9
C2—C3—H3120.7C19—C18—C17120.3 (3)
C2—C3—C4118.6 (3)C19—C18—H18119.9
C4—C3—H3120.7C18—C19—H19120.5
C3—C4—H4120.8C18—C19—C20119.1 (3)
C5—C4—C3118.5 (3)C20—C19—H19120.5
C5—C4—H4120.8N5—C20—C19119.4 (2)
N1—C5—C4123.6 (3)C21—C20—N5106.1 (2)
N1—C5—C6113.3 (2)C21—C20—C19134.5 (3)
C4—C5—C6123.1 (3)N4—C21—H21126.2
N2—C6—N3106.5 (2)C20—C21—N4107.5 (2)
N2—C6—C5125.4 (2)C20—C21—H21126.2
N3—C6—C5128.1 (3)N6—C22—C15114.4 (2)
N2—C7—H7120.7N6—C22—C23123.7 (3)
C8—C7—N2118.5 (3)C23—C22—C15121.9 (2)
C8—C7—H7120.7C22—C23—H23120.7
C7—C8—H8118.8C22—C23—C24118.6 (3)
C7—C8—C9122.5 (3)C24—C23—H23120.7
C9—C8—H8118.8C23—C24—H24120.8
C8—C9—H9120.2C25—C24—C23118.4 (3)
C10—C9—C8119.6 (3)C25—C24—H24120.8
C10—C9—H9120.2C24—C25—H25120.3
C9—C10—H10120.4C24—C25—C26119.4 (3)
C9—C10—C11119.2 (3)C26—C25—H25120.3
C11—C10—H10120.4N6—C26—C25123.8 (3)
N2—C11—C10119.7 (2)N6—C26—H26118.1
C12—C11—N2105.7 (2)C25—C26—H26118.1
N1—C1—C2—C31.8 (4)C11—N2—C7—C80.6 (4)
N1—C5—C6—N240.3 (4)C12—N3—C6—N2−0.3 (3)
N1—C5—C6—N3−136.2 (3)C12—N3—C6—C5176.8 (3)
N2—C7—C8—C9−0.2 (4)C12—N3—C13—C14−77.9 (3)
N2—C11—C12—N30.2 (3)C13—N3—C6—N2−172.3 (2)
N3—C13—C14—N4−66.3 (3)C13—N3—C6—C54.8 (4)
N4—C15—C22—N6−132.1 (3)C13—N3—C12—C11172.6 (2)
N4—C15—C22—C2347.1 (4)C14—N4—C15—N5−172.6 (2)
N5—C15—C22—N644.1 (4)C14—N4—C15—C224.2 (4)
N5—C15—C22—C23−136.8 (3)C14—N4—C21—C20172.9 (2)
N5—C16—C17—C18−0.5 (4)C15—N4—C14—C1396.2 (3)
N5—C20—C21—N40.2 (3)C15—N4—C21—C200.3 (3)
N6—C22—C23—C242.4 (4)C15—N5—C16—C17179.4 (3)
C1—N1—C5—C4−0.3 (4)C15—N5—C20—C19−180.0 (2)
C1—N1—C5—C6−179.6 (2)C15—N5—C20—C21−0.6 (3)
C1—C2—C3—C40.3 (4)C15—C22—C23—C24−176.6 (3)
C2—C3—C4—C5−2.2 (4)C16—N5—C15—N4−176.9 (2)
C3—C4—C5—N12.3 (4)C16—N5—C15—C226.3 (4)
C3—C4—C5—C6−178.6 (3)C16—N5—C20—C19−2.1 (4)
C4—C5—C6—N2−138.9 (3)C16—N5—C20—C21177.3 (2)
C4—C5—C6—N344.5 (4)C16—C17—C18—C19−0.9 (4)
C5—N1—C1—C2−1.7 (4)C17—C18—C19—C200.7 (4)
C6—N2—C7—C8−179.8 (3)C18—C19—C20—N50.7 (4)
C6—N2—C11—C10179.9 (2)C18—C19—C20—C21−178.4 (3)
C6—N2—C11—C12−0.4 (3)C19—C20—C21—N4179.4 (3)
C6—N3—C12—C110.1 (3)C20—N5—C15—N40.8 (3)
C6—N3—C13—C1493.3 (3)C20—N5—C15—C22−176.0 (2)
C7—N2—C6—N3−179.2 (2)C20—N5—C16—C171.9 (4)
C7—N2—C6—C53.6 (4)C21—N4—C14—C13−74.9 (3)
C7—N2—C11—C10−0.4 (4)C21—N4—C15—N5−0.7 (3)
C7—N2—C11—C12179.3 (2)C21—N4—C15—C22176.0 (2)
C7—C8—C9—C10−0.3 (4)C22—N6—C26—C25−1.7 (4)
C8—C9—C10—C110.5 (4)C22—C23—C24—C25−1.7 (4)
C9—C10—C11—N2−0.1 (4)C23—C24—C25—C26−0.6 (4)
C9—C10—C11—C12−179.7 (3)C24—C25—C26—N62.4 (5)
C10—C11—C12—N3179.8 (3)C26—N6—C22—C15178.4 (2)
C11—N2—C6—N30.5 (3)C26—N6—C22—C23−0.7 (4)
C11—N2—C6—C5−176.7 (3)
Hydrogen-bond geometry (Å, º) top
D—H···AD—HH···AD···AD—H···A
O1—H1A···O50.871.892.754 (3)170
O2—H2A···O10.872.042.891 (4)164
O2—H2B···O60.871.902.739 (3)161
O3—H3A···Cl2i0.872.263.119 (2)169
O3—H3B···O20.871.882.737 (4)169
O5—H5A···O40.871.902.758 (3)169
O5—H5B···Cl1ii0.872.253.117 (2)176
O6—H6A···O3i0.871.842.705 (3)175
O6—H6B···Cl10.872.213.081 (2)175
Symmetry codes: (i) −x+1, −y+1, −z+1; (ii) −x+1/2, y+1/2, −z+1/2.
 

Acknowledgements

The authors are grateful to the FAIRE programme provided by the Cambridge Crystallographic Data Centre (CCDC) for the opportunity to use the Cambridge Structural Database (CSD) and associated software.

Funding information

Funding for this research was provided by: the Ministry of Education and Science of Ukraine (grant No. 26BF037-01 to O. Yu. Vassilyeva; grant No. 26BF037-04 to V. N. Kokozay).

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