research communications
The adduct of di-μ2-hydroxido-bis[chloridodiphenyltin(IV)] with two molecules of 2-vinylpyridine
aChemistry, Osnabrück University, Barabarstr. 7, 49069 Osnabrück, Germany
*Correspondence e-mail: [email protected]
The solid-state structure of the adduct of diphenyltin(IV) hydroxide chloride, Ph2Sn(OH)Cl, with 2-vinylpyridine, 2Vipy, namely, di-μ-hydroxido-bis[chloridodiphenyltin(IV)]–2-ethenylpyridine (1/2), [Sn2(C6H5)4Cl2(OH)2]·2C7H7N, exhibits dimeric, hydrogen-bonded aggregates [Ph2Sn(OH)Cl·2Vipy]2. The aggregates are non-centrosymmetric but exhibit the characteristic structural features of Brønsted base, BB, stabilized diorganotin(IV) hydroxide-halides, [R2Sn(OH)Hal·BB]2, with trigonal–bipyramidally coordinated tin atoms and two bridging hydroxide groups. Non-centrosymmetry leads to a slightly bent and distorted rhombic, four-membered Sn2—O2 ring consisting of two different tin and oxygen atoms. As usual, Sn—O bond lengths depend on the position the hydroxyl groups adopt within the trigonal–bipyramidal coordination sphere of the Sn atoms [mean values: d(Sn—OH)ax = 2.191 (9) Å, d(Sn—OH)eq = 2.019 (3) Å]. Bond angles within the Sn2—O2 ring are acute [mean value: 71.1 (2)°] at the tin atoms and obtuse [mean value: 108.9 (3)°] at the oxygen atoms. Hydroxyl groups display a trigonal–planar constitution and are involved in hydrogen bonds [mean values: d(O⋯N) = 2.714 (8) Å; <(O—H⋯N) = 170 (5)°] to the N atoms of the 2-vinylpyridine molecules.
Keywords: crystal structure; diphenyltin(IV) dichloride; diorganotin(IV) hydroxide-halide; hydrolysis; 2-vinylpyridine; hydrogen bonding.
CCDC reference: 2572540
1. Chemical context
Diorganotin(IV) hydroxide halides, R2Sn(OH)Hal, are the first hydrolysis products of diorganotin(IV) dihalides, R2SnHal2. Although the hydrolysis products of the dihalides have been studied for a long time, only some few examples of hydroxide halides have been unambiguously characterized by X-ray diffraction. A complete set comprising all four halogens currently exists only for the bulky t-butyl group, R = tBu [Hal = F, α-Cl, Br (Puff et al., 1985
), Hal = β-Cl (Di Nicola et al., 2011
), and Hal = I (Reuter, 2022
)]. These investigations revealed not only the dimeric nature of this class of compounds but also their general structural features with trigonal-bipyramidally coordinated tin atoms bridged via two hydroxide groups generating a four-membered Sn2O2 ring. Furthermore, there is only one additional example of a pure hydroxide halide described in the literature with R = p-tolyl and Hal = Br (Lo & Ng, 2009
).
In the majority of cases, these primary hydrolysis products of diorganotin(IV) dihalides, in fact, undergo a condensation reaction giving rise to the formation of the more common tetraorgano-dihalogenido-distannoxanes, (R2SnHal)2O, which are in solution as well as in solid state dimeric, too, with a ladder-type Sn–O–Hal arrangement. In the literature, the structures of many dihalogenido-distannoxanes are described including those with R = Ph and Hal = Cl as pure substances (Vollano et al., 1984
) or as a CH2Cl2 solvate (Estudiante-Negrete et al., 2004
).
However, it is possible to isolate hydroxide halides – even if they normally tend to undergo condensation – when their hydroxyl groups are hindered to condensate because of the formation of hydrogen bonds to Brønsted bases, BB. Thus, for R = Ph and Hal = Cl this has been shown for BB = ethanol, EtOH, (Barba et al., 2007
) and quinoline, Quin, (Anacona et al., 2003
). The universality of this concept was underlined by [tBu2Sn(OH)Cl]2·2DMSO, which was found in co-crystals with [(tBu2Sn)3O(OH)2][I]2 ((Reuter & Wilberts, 2014
), and by [Ph2Sn(OH)I]2·2DMPU (Reuter, 2025
).
Here we present the first hydrogen-bond-stabilized hydroxide halide with a non-centrosymmetric, dimeric constitution obtained as side-product when we tried to synthesize a 1:2 complex of diphenyltin(IV) dichloride, Ph2SnCl2, with 2-vinylpyridine, 2Vipy, in ethanol.
2. Structural commentary
The title compound crystallizes in the monoclinic P21/c with four formula units, [Ph2Sn(OH)Cl·2Vipy]2 in the and one formula unit in the with all atoms in general positions. The molecule therefore belongs to C1 (Fig. 1
) contrary to the Ci symmetry of the corresponding phenyl compounds with ethanol and quinoline (Anacona et al., 2003
). As a result, the central, four-membered Sn2O2 ring is no longer planar but bent. The deviation from planarity, however, is very small as indicated by the dihedral angle between the two O–Sn–O planes of 0.38 (11)°. Apart from this non-planarity, the four-membered Sn2O2 ring (Fig. 2
) exhibits the characteristic, slightly distorted, rhombic shape with acute angles at oxygen [70.89 (7)/71.23 (7)°] and obtuse ones at tin [109.13 (9)/108.75 (9)°], all in the range of the corresponding angles in the other hydroxide-halides (Puff et al., 1985
). The Sn—O bond lengths differ depending on whether the oxygen atom adopts an equatorial [2.0206 (19)/2.0172(19] Å] or an axial [2.1974 (18)/2.1845 (18) Å] position within the trigonal–bipyramidal coordination of the tin atoms.
| Figure 1 The asymmetric unit of the title compound shown with displacement ellipsoids at the 40% level. Red dashed lines represent the O—N⋯H hydrogen bonds. |
| | Figure 2 Representation of the four-membered Sn2O2 ring showing the most important bond angles (°) and bond lengths (Å). Positions of the oxygen and chlorine atoms within the trigonal–bipyramidal coordination of the tin atoms are labeled by use of the abbreviations ax (= axial) and eq (= equatorial). For clarity, Ph groups are stripped down to the Sn—C bonds drawn as shortened sticks. |
The chlorine atoms adopt equatorial positions with a mean Sn–Cl distance of 2.450 (5) Å compared with the Sn—Cl distance of 2.45 (2) Å in the compound with quinoline. Somewhat longer Sn—Cl distances of 2.4748 (6) Å are found in the adduct with EtOH, and in the pure t-butyl compound with d(Sn—Cl)mean = 2.506 (1) Å (Puff et al., 1985
), probably because the corresponding chlorine atoms are involved in hydrogen bonds.
The trigonal–bipyramidal coordination of the two crystallographically different tin atoms is completed by two phenyl groups in equatorial positions. Sn—C distances are in the range 2.112 (3)–2.128 (3) Å, mean value 2.120 (7) Å. By way of comparison: in the compound with quinoline and ethanol as BB, the Sn—C distances [BB = Quin: 2.120 (3)/2.134 (3) Å, 2.110 (4)/2.119 (3) Å; BB = EtOH: 2.114 (2)/2.120 (2) Å] are of comparable length. All of these values are significantly shorter from those found in the t-butyl compound [BB = DMSO: d(Sn—C) 2.193 (7) Å] underlining the observation that the Sn—C distances depend on the nature of the organic group.
C—C bond lengths within the four crystallographically different, almost planar phenyl rings range from 1.372 (6) to 1.401 (4) Å with a mean value of 1.386 (8) Å, which corresponds quite well with the value [1.387 (10) Å] given by Allen et al. (1987
) for C—C bond lengths in phenyl groups. Among the bond angles within these phenyl rings, the value at the ipso carbon atom [mean value: 118.7 (1)°] is noteworthy because it is significantly smaller than in a regular hexagon, a phenomenon generally attributed to the ipso-effect (Domenicano et al., 1983
).
The structure of pure 2-vinylpyridine is not yet described in the literature. The compound has been used, however, as ligand in complexes with transition metals where it acts as Lewis base coordinating via the N atom of the pyridine moiety and/or as π-electron donor via its double bond. Typical examples of mononuclear complexes with 2-vinylpyridine as pure Lewis Base are [Os(2Vipy)2(iPr3P)(CF3SO3), FeX2(2Vipy)2 with X = p-tolylbenzoate (Kuzelka et al., 2003
) or [Rh(2Vipy)2(COD)][CF3SO3] with COD = η4-cycloocta-1,5-diene (Beller et al., 1999
), and PdCl2(2Vipy)2 (Newkome et al., 1988
; Fronczek, 2015
) while in complexes like RuCl(PPh3)(2Vipy)2 or RuCl2(PPh3)(2Vipy)·CH2Cl2 (Zhang et al., 2007
) both coordination (LB and π-donor) modes are realized. Compounds of 2-vinylpyridine acting as Brønsted Base with the N atom as hydrogen bond acceptor have not yet been described. In the title compound, the hydrogen bonds (Table 1
) show donor–acceptor distances of 2.708 (3) and 2.720 (3) Å and bridging angles of 173.2/166.7°. In the quinoline adduct (Anacona et al., 2003
) the corresponding hydrogen bonds are somewhat longer [2.7564 (4)/2.787 (5)] and less linear [171 (3)°/163 (3)°].
| ||||||||||||||||||||||
The lack of information on the structure of the pure 2-vinylpyridine in combination with the multiple different binding modes in its transition metal complexes mentioned above, makes it difficult to evaluate the influence of the hydrogen-bond formation on the internal bond lengths and angles of the almost planar 2-vinylpyridine molecules of the title compound. Distortions of the two pyridine moieties from regular hexagons are expressed by N—C bond lengths of 1.330 (4) to 1.340 (4) Å [mean value: 1.336 (5) Å, reference value: 1.337 (12) Å for Car—Nar in pyridine (Allen et al., 1987
)], endocyclic bond angles at N of 118.1 (3)/118.0 (3)° accompanied by a widening [124.5 (3)/124.0 (3)°] of the bond angles at the carbon atoms C11/C21 in the para position to the vinyl group. The vinyl groups themselves are characterized by C—C single bond lengths of 1.469 (4)/1.471 (5) Å [reference value: 1.470 (15) for Csp2—Car in C=C—Car, Allen et al., 1987
], C=C double bonds of 1.303 (5)/1.312 (5) Å [reference value: 1.339 (11) for Csp2=Csp2 in C=C—Car, Allen et al., 1987
] and bond angles at the carbon atoms C16/C26 of 125.4 (3)/126.5 (3)°.
3. Supramolecular features
With the formation of the hydrogen bonds to the 2-vinylpyridine molecules the polar bonds of the [Ph2Sn(OH)Cl]2 molecule are completely shielded except for the Sn—Cl bonds (Fig. 3
). In contrast to the pure t-butyl compounds, tBu2Sn(OH)Hal, which exhibit one-dimensional chain structures due to OH⋯Hal hydrogen bonds, the title compound, like its quinoline counterpart, represents a molecular structure. On the other hand, the EtOH adduct of Ph2Sn(OH)Cl constitutes a chain structure because the OH group of the ethanol molecules acts as hydrogen donor to the chlorine atoms and as hydrogen acceptors to the hydroxyl groups.
| Figure 3 Space-filling model of the [Ph2Sn(OH)Cl·2Vipy]2. aggregates. Color code of the atoms: Cl = green, H = white, C = gray, O = red, Sn = gold, N = light blue. |
Molecules of the title compound are arranged in the solid state with their Sn—O planes in layers perpendicular to the c-axis probably because of weak intermolecular interactions involving the Cl atoms with the hydrogen atoms of the organic moieties of neighboring molecules (Fig. 4
).
| Figure 4 View of the three-dimensional network along the bc plane, highlighting the O—H⋯N hydrogen bonds. |
4. Synthesis and crystallization
The title compound was obtained as a side-product in a micro-scale experiment performed on a Petri dish screening the complex behavior of 2-vinylpyridine (Sigma Aldrich) towards diphenyltin(IV) dichloride (Fluka). After prolonged standing in air, some colorless prisms suitable for X-ray diffraction could be isolated from the reaction mixture, probably as a result of partial hydrolysis of the dihalide.
5. Refinement
Crystal data, data collection and structure details are summarized in Table 2
. All H atoms were clearly identified in difference-Fourier syntheses. Those of the organic moieties were refined in idealized geometries and allowed to ride on their parent carbon atoms with 0.95 Å and common isotropic temperature factors for all hydrogen atoms of each organic moiety. The H atoms of the two hydroxy groups were modeled with a common O—H distance of 0.96 Å before they were fixed and allowed to ride on the corresponding oxygen atom with one common isotropic temperature factor.
|
Supporting information
CCDC reference: 2572540
contains datablock I. DOI: https://doi.org/10.1107/S2056989026007152/vu2020sup1.cif
Structure factors: contains datablock I. DOI: https://doi.org/10.1107/S2056989026007152/vu2020Isup2.hkl
| [Sn2(C6H5)4Cl2(OH)2]·2C7H7N | F(000) = 1712 |
| Mr = 860.97 | Dx = 1.584 Mg m−3 |
| Monoclinic, P21/n | Mo Kα radiation, λ = 0.71073 Å |
| a = 10.4040 (4) Å | Cell parameters from 9965 reflections |
| b = 21.4649 (9) Å | θ = 2.3–27.4° |
| c = 16.2255 (7) Å | µ = 1.57 mm−1 |
| β = 94.746 (2)° | T = 100 K |
| V = 3611.1 (3) Å3 | Prism, colourless |
| Z = 4 | 0.31 × 0.17 × 0.09 mm |
| Bruker APEXII CCD diffractometer | 6258 reflections with I > 2σ(I) |
| φ and ω scans | Rint = 0.062 |
| Absorption correction: multi-scan (SADABS; Krause et al., 2015) | θmax = 28.0°, θmin = 1.9° |
| Tmin = 0.718, Tmax = 0.834 | h = −13→13 |
| 143749 measured reflections | k = −28→28 |
| 8729 independent reflections | l = −21→21 |
| Refinement on F2 | Primary atom site location: structure-invariant direct methods |
| Least-squares matrix: full | Hydrogen site location: mixed |
| R[F2 > 2σ(F2)] = 0.031 | Only H-atom displacement parameters refined |
| wR(F2) = 0.076 | w = 1/[σ2(Fo2) + (0.0276P)2 + 4.3782P] where P = (Fo2 + 2Fc2)/3 |
| S = 1.04 | (Δ/σ)max = 0.001 |
| 8729 reflections | Δρmax = 1.21 e Å−3 |
| 422 parameters | Δρmin = −0.65 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. |
| x | y | z | Uiso*/Ueq | ||
| Sn1 | 0.66696 (2) | 0.36578 (2) | 0.25882 (2) | 0.02315 (6) | |
| Sn2 | 0.33862 (2) | 0.38423 (2) | 0.24390 (2) | 0.02518 (6) | |
| Cl1 | 0.82982 (7) | 0.44864 (4) | 0.26248 (6) | 0.0395 (2) | |
| Cl2 | 0.17342 (8) | 0.30287 (4) | 0.23797 (8) | 0.0539 (3) | |
| O1 | 0.52597 (18) | 0.43077 (9) | 0.25227 (12) | 0.0254 (4) | |
| H1 | 0.5399 | 0.4750 | 0.2545 | 0.059 (8)* | |
| N1 | 0.5584 (2) | 0.55498 (11) | 0.23343 (15) | 0.0272 (5) | |
| C11 | 0.6352 (3) | 0.56690 (15) | 0.17342 (19) | 0.0327 (7) | |
| H11 | 0.6818 | 0.5331 | 0.1527 | 0.047 (4)* | |
| C12 | 0.6515 (3) | 0.62483 (16) | 0.1395 (2) | 0.0342 (7) | |
| H12 | 0.7060 | 0.6309 | 0.0960 | 0.047 (4)* | |
| C13 | 0.5852 (3) | 0.67368 (16) | 0.1713 (2) | 0.0330 (8) | |
| H13 | 0.5949 | 0.7147 | 0.1507 | 0.047 (4)* | |
| C14 | 0.5046 (3) | 0.66270 (15) | 0.2335 (2) | 0.0303 (7) | |
| H14 | 0.4581 | 0.6960 | 0.2557 | 0.047 (4)* | |
| C15 | 0.4924 (3) | 0.60249 (14) | 0.26299 (19) | 0.0242 (6) | |
| C16 | 0.4087 (3) | 0.58645 (17) | 0.3284 (2) | 0.0327 (8) | |
| H16 | 0.4057 | 0.5440 | 0.3445 | 0.047 (4)* | |
| C17 | 0.3383 (3) | 0.62571 (19) | 0.3662 (2) | 0.0458 (9) | |
| H171 | 0.3385 | 0.6686 | 0.3519 | 0.047 (4)* | |
| H172 | 0.2867 | 0.6114 | 0.4080 | 0.047 (4)* | |
| C31 | 0.7288 (3) | 0.32593 (14) | 0.37512 (19) | 0.0264 (6) | |
| C32 | 0.6575 (3) | 0.27954 (15) | 0.4104 (2) | 0.0311 (7) | |
| H32 | 0.5761 | 0.2676 | 0.3843 | 0.042 (5)* | |
| C33 | 0.7041 (4) | 0.25072 (18) | 0.4832 (2) | 0.0385 (8) | |
| H33 | 0.6547 | 0.2191 | 0.5066 | 0.042 (5)* | |
| C34 | 0.8224 (4) | 0.26775 (18) | 0.5219 (2) | 0.0426 (9) | |
| H34 | 0.8541 | 0.2481 | 0.5720 | 0.042 (5)* | |
| C35 | 0.8939 (3) | 0.31337 (18) | 0.4875 (2) | 0.0428 (9) | |
| H35 | 0.9752 | 0.3250 | 0.5140 | 0.042 (5)* | |
| C36 | 0.8488 (3) | 0.34250 (15) | 0.4147 (2) | 0.0333 (7) | |
| H36 | 0.8993 | 0.3738 | 0.3915 | 0.042 (5)* | |
| C41 | 0.7176 (3) | 0.32535 (15) | 0.1473 (2) | 0.0297 (7) | |
| C42 | 0.8399 (3) | 0.29868 (18) | 0.1481 (2) | 0.0395 (8) | |
| H42 | 0.8994 | 0.3043 | 0.1951 | 0.055 (5)* | |
| C43 | 0.8765 (4) | 0.2643 (2) | 0.0820 (2) | 0.0538 (11) | |
| H43 | 0.9597 | 0.2458 | 0.0839 | 0.055 (5)* | |
| C44 | 0.7905 (4) | 0.2570 (2) | 0.0134 (2) | 0.0577 (12) | |
| H44 | 0.8138 | 0.2325 | −0.0317 | 0.055 (5)* | |
| C45 | 0.6706 (4) | 0.2853 (2) | 0.0097 (2) | 0.0504 (10) | |
| H45 | 0.6138 | 0.2818 | −0.0390 | 0.055 (5)* | |
| C46 | 0.6331 (3) | 0.31876 (18) | 0.0767 (2) | 0.0386 (8) | |
| H46 | 0.5499 | 0.3372 | 0.0745 | 0.055 (5)* | |
| O2 | 0.47852 (17) | 0.31893 (9) | 0.24973 (12) | 0.0266 (5) | |
| H2 | 0.4626 | 0.2749 | 0.2517 | 0.059 (8)* | |
| N2 | 0.4379 (2) | 0.19471 (11) | 0.26815 (16) | 0.0261 (5) | |
| C21 | 0.3503 (3) | 0.18149 (15) | 0.3208 (2) | 0.0344 (7) | |
| H21 | 0.3005 | 0.2148 | 0.3398 | 0.048 (4)* | |
| C22 | 0.3273 (3) | 0.12247 (17) | 0.3493 (2) | 0.0341 (7) | |
| H22 | 0.2643 | 0.1151 | 0.3874 | 0.048 (4)* | |
| C23 | 0.3997 (3) | 0.07448 (16) | 0.3203 (2) | 0.0339 (8) | |
| H23 | 0.3870 | 0.0330 | 0.3384 | 0.048 (4)* | |
| C24 | 0.4885 (3) | 0.08651 (15) | 0.2661 (2) | 0.0321 (7) | |
| H24 | 0.5380 | 0.0536 | 0.2457 | 0.048 (4)* | |
| C25 | 0.5070 (3) | 0.14758 (15) | 0.24049 (18) | 0.0252 (7) | |
| C26 | 0.6026 (3) | 0.16422 (16) | 0.1823 (2) | 0.0327 (8) | |
| H26 | 0.6075 | 0.2069 | 0.1674 | 0.048 (4)* | |
| C27 | 0.6820 (3) | 0.1260 (2) | 0.1490 (2) | 0.0435 (9) | |
| H27A | 0.6809 | 0.0828 | 0.1620 | 0.048 (4)* | |
| H27B | 0.7405 | 0.1414 | 0.1119 | 0.048 (4)* | |
| C51 | 0.2903 (3) | 0.42367 (14) | 0.3567 (2) | 0.0290 (7) | |
| C52 | 0.3775 (3) | 0.42897 (17) | 0.4264 (2) | 0.0374 (8) | |
| H52 | 0.4613 | 0.4114 | 0.4261 | 0.058 (5)* | |
| C53 | 0.3422 (4) | 0.4598 (2) | 0.4960 (2) | 0.0490 (10) | |
| H53 | 0.4014 | 0.4625 | 0.5437 | 0.058 (5)* | |
| C54 | 0.2215 (4) | 0.4867 (2) | 0.4966 (2) | 0.0510 (10) | |
| H54 | 0.1985 | 0.5089 | 0.5439 | 0.058 (5)* | |
| C55 | 0.1346 (3) | 0.4810 (2) | 0.4280 (2) | 0.0474 (10) | |
| H55 | 0.0511 | 0.4987 | 0.4285 | 0.058 (5)* | |
| C56 | 0.1680 (3) | 0.44974 (17) | 0.3589 (2) | 0.0363 (8) | |
| H56 | 0.1071 | 0.4459 | 0.3122 | 0.058 (5)* | |
| C61 | 0.2783 (3) | 0.42428 (14) | 0.12710 (19) | 0.0293 (7) | |
| C63 | 0.1134 (4) | 0.4390 (2) | 0.0153 (2) | 0.0478 (10) | |
| H63 | 0.0321 | 0.4279 | −0.0117 | 0.042 (5)* | |
| C64 | 0.1856 (4) | 0.4849 (2) | −0.0174 (2) | 0.0502 (11) | |
| H64 | 0.1535 | 0.5059 | −0.0664 | 0.042 (5)* | |
| C65 | 0.3043 (4) | 0.50067 (19) | 0.0207 (2) | 0.0423 (9) | |
| H65 | 0.3542 | 0.5324 | −0.0023 | 0.042 (5)* | |
| C66 | 0.3516 (3) | 0.47026 (16) | 0.0927 (2) | 0.0328 (8) | |
| H66 | 0.4340 | 0.4809 | 0.1184 | 0.042 (5)* | |
| C62 | 0.1583 (3) | 0.40882 (17) | 0.0871 (2) | 0.0379 (8) | |
| H62 | 0.1074 | 0.3773 | 0.1096 | 0.042 (5)* |
| U11 | U22 | U33 | U12 | U13 | U23 | |
| Sn1 | 0.01662 (9) | 0.01572 (10) | 0.03616 (12) | −0.00208 (7) | −0.00347 (8) | 0.00538 (8) |
| Sn2 | 0.01656 (9) | 0.01485 (10) | 0.04299 (13) | −0.00109 (7) | −0.00445 (8) | 0.00164 (8) |
| Cl1 | 0.0240 (4) | 0.0234 (4) | 0.0689 (6) | −0.0097 (3) | −0.0093 (4) | 0.0122 (4) |
| Cl2 | 0.0234 (4) | 0.0229 (4) | 0.1128 (9) | −0.0087 (3) | −0.0107 (5) | 0.0067 (5) |
| O1 | 0.0190 (9) | 0.0128 (10) | 0.0433 (13) | −0.0035 (7) | −0.0032 (9) | 0.0036 (8) |
| N1 | 0.0325 (14) | 0.0165 (12) | 0.0318 (14) | 0.0008 (10) | −0.0019 (11) | −0.0005 (10) |
| C11 | 0.0421 (18) | 0.0237 (16) | 0.0330 (17) | 0.0026 (13) | 0.0070 (14) | −0.0008 (13) |
| C12 | 0.0381 (17) | 0.0284 (19) | 0.0365 (18) | 0.0003 (14) | 0.0061 (14) | 0.0042 (15) |
| C13 | 0.0345 (17) | 0.0207 (16) | 0.0428 (19) | −0.0021 (13) | −0.0022 (15) | 0.0072 (14) |
| C14 | 0.0295 (16) | 0.0170 (16) | 0.0433 (19) | 0.0035 (12) | −0.0035 (14) | −0.0007 (13) |
| C15 | 0.0222 (14) | 0.0169 (14) | 0.0324 (16) | 0.0006 (11) | −0.0045 (12) | −0.0021 (12) |
| C16 | 0.0275 (16) | 0.0332 (19) | 0.0373 (18) | −0.0017 (13) | 0.0025 (14) | 0.0034 (14) |
| C17 | 0.045 (2) | 0.041 (2) | 0.054 (2) | 0.0002 (17) | 0.0208 (18) | 0.0020 (19) |
| C31 | 0.0263 (15) | 0.0192 (15) | 0.0335 (16) | 0.0046 (12) | 0.0015 (13) | −0.0013 (12) |
| C32 | 0.0317 (16) | 0.0236 (16) | 0.0378 (18) | 0.0045 (13) | 0.0016 (14) | 0.0020 (13) |
| C33 | 0.046 (2) | 0.035 (2) | 0.0355 (19) | 0.0109 (16) | 0.0148 (16) | 0.0093 (15) |
| C34 | 0.057 (2) | 0.046 (2) | 0.0241 (17) | 0.0239 (18) | −0.0004 (16) | 0.0023 (15) |
| C35 | 0.0397 (19) | 0.048 (2) | 0.0386 (19) | 0.0128 (17) | −0.0121 (16) | −0.0034 (17) |
| C36 | 0.0315 (16) | 0.0293 (18) | 0.0378 (18) | 0.0031 (13) | −0.0044 (14) | −0.0008 (14) |
| C41 | 0.0232 (14) | 0.0293 (17) | 0.0358 (17) | −0.0066 (12) | −0.0018 (13) | 0.0079 (13) |
| C42 | 0.0270 (16) | 0.054 (2) | 0.0380 (19) | 0.0017 (15) | 0.0028 (14) | 0.0071 (17) |
| C43 | 0.043 (2) | 0.073 (3) | 0.047 (2) | 0.011 (2) | 0.0126 (18) | 0.006 (2) |
| C44 | 0.066 (3) | 0.074 (3) | 0.035 (2) | 0.000 (2) | 0.019 (2) | 0.003 (2) |
| C45 | 0.054 (2) | 0.066 (3) | 0.0302 (19) | −0.014 (2) | −0.0029 (17) | 0.0043 (19) |
| C46 | 0.0302 (17) | 0.044 (2) | 0.040 (2) | −0.0068 (15) | −0.0027 (15) | 0.0133 (16) |
| O2 | 0.0181 (9) | 0.0120 (9) | 0.0493 (14) | −0.0038 (7) | 0.0003 (9) | 0.0026 (8) |
| N2 | 0.0282 (13) | 0.0137 (12) | 0.0365 (14) | −0.0002 (10) | 0.0029 (11) | −0.0016 (10) |
| C21 | 0.0402 (18) | 0.0247 (17) | 0.0389 (18) | 0.0032 (14) | 0.0061 (15) | −0.0005 (14) |
| C22 | 0.0357 (17) | 0.032 (2) | 0.0347 (17) | −0.0005 (14) | 0.0053 (14) | 0.0037 (15) |
| C23 | 0.0397 (18) | 0.0185 (16) | 0.0423 (19) | −0.0010 (13) | −0.0039 (15) | 0.0077 (14) |
| C24 | 0.0351 (17) | 0.0181 (16) | 0.0420 (19) | 0.0055 (13) | −0.0030 (15) | −0.0010 (14) |
| C25 | 0.0235 (14) | 0.0192 (15) | 0.0310 (16) | 0.0024 (11) | −0.0086 (13) | −0.0028 (12) |
| C26 | 0.0314 (17) | 0.0279 (18) | 0.0385 (19) | 0.0029 (13) | 0.0004 (14) | 0.0003 (14) |
| C27 | 0.0396 (19) | 0.048 (2) | 0.044 (2) | 0.0067 (17) | 0.0064 (16) | 0.0041 (18) |
| C51 | 0.0221 (14) | 0.0257 (16) | 0.0391 (17) | −0.0029 (12) | 0.0012 (13) | 0.0130 (13) |
| C52 | 0.0246 (16) | 0.047 (2) | 0.0403 (19) | 0.0001 (14) | −0.0017 (14) | 0.0123 (16) |
| C53 | 0.037 (2) | 0.075 (3) | 0.034 (2) | −0.0112 (19) | −0.0030 (16) | 0.010 (2) |
| C54 | 0.049 (2) | 0.067 (3) | 0.039 (2) | −0.007 (2) | 0.0142 (18) | 0.0025 (19) |
| C55 | 0.0308 (18) | 0.069 (3) | 0.044 (2) | 0.0072 (18) | 0.0087 (16) | 0.0054 (19) |
| C56 | 0.0223 (15) | 0.047 (2) | 0.0398 (19) | 0.0009 (14) | 0.0016 (14) | 0.0081 (16) |
| C61 | 0.0289 (15) | 0.0239 (16) | 0.0339 (17) | 0.0094 (13) | −0.0047 (13) | −0.0110 (13) |
| C63 | 0.0368 (19) | 0.063 (3) | 0.041 (2) | 0.0229 (19) | −0.0145 (17) | −0.0181 (19) |
| C64 | 0.051 (2) | 0.069 (3) | 0.0297 (19) | 0.037 (2) | −0.0031 (17) | −0.0069 (18) |
| C65 | 0.050 (2) | 0.047 (2) | 0.0300 (18) | 0.0207 (18) | 0.0032 (16) | −0.0012 (16) |
| C66 | 0.0349 (17) | 0.0319 (18) | 0.0307 (17) | 0.0084 (14) | −0.0022 (14) | −0.0050 (14) |
| C62 | 0.0275 (16) | 0.035 (2) | 0.049 (2) | 0.0108 (14) | −0.0084 (15) | −0.0163 (16) |
| Sn1—O1 | 2.0206 (19) | C44—C45 | 1.384 (6) |
| Sn1—C41 | 2.112 (3) | C44—H44 | 0.9500 |
| Sn1—C31 | 2.123 (3) | C45—C46 | 1.386 (5) |
| Sn1—O2 | 2.1974 (18) | C45—H45 | 0.9500 |
| Sn1—Cl1 | 2.4538 (7) | C46—H46 | 0.9500 |
| Sn2—O2 | 2.0172 (19) | O2—H2 | 0.9600 |
| Sn2—C51 | 2.115 (3) | N2—C21 | 1.330 (4) |
| Sn2—C61 | 2.128 (3) | N2—C25 | 1.340 (4) |
| Sn2—O1 | 2.1845 (18) | C21—C22 | 1.377 (5) |
| Sn2—Cl2 | 2.4466 (8) | C21—H21 | 0.9500 |
| O1—H1 | 0.9600 | C22—C23 | 1.382 (5) |
| N1—C11 | 1.334 (4) | C22—H22 | 0.9500 |
| N1—C15 | 1.340 (4) | C23—C24 | 1.353 (5) |
| C11—C12 | 1.376 (4) | C23—H23 | 0.9500 |
| C11—H11 | 0.9500 | C24—C25 | 1.393 (5) |
| C12—C13 | 1.378 (5) | C24—H24 | 0.9500 |
| C12—H12 | 0.9500 | C25—C26 | 1.471 (5) |
| C13—C14 | 1.385 (5) | C26—C27 | 1.312 (5) |
| C13—H13 | 0.9500 | C26—H26 | 0.9500 |
| C14—C15 | 1.388 (4) | C27—H27A | 0.9500 |
| C14—H14 | 0.9500 | C27—H27B | 0.9500 |
| C15—C16 | 1.469 (4) | C51—C56 | 1.392 (4) |
| C16—C17 | 1.303 (5) | C51—C52 | 1.395 (4) |
| C16—H16 | 0.9500 | C52—C53 | 1.384 (5) |
| C17—H171 | 0.9500 | C52—H52 | 0.9500 |
| C17—H172 | 0.9500 | C53—C54 | 1.383 (6) |
| C31—C32 | 1.393 (4) | C53—H53 | 0.9500 |
| C31—C36 | 1.401 (4) | C54—C55 | 1.380 (5) |
| C32—C33 | 1.385 (4) | C54—H54 | 0.9500 |
| C32—H32 | 0.9500 | C55—C56 | 1.375 (5) |
| C33—C34 | 1.384 (5) | C55—H55 | 0.9500 |
| C33—H33 | 0.9500 | C56—H56 | 0.9500 |
| C34—C35 | 1.376 (5) | C61—C66 | 1.392 (5) |
| C34—H34 | 0.9500 | C61—C62 | 1.398 (4) |
| C35—C36 | 1.384 (5) | C63—C64 | 1.372 (6) |
| C35—H35 | 0.9500 | C63—C62 | 1.381 (5) |
| C36—H36 | 0.9500 | C63—H63 | 0.9500 |
| C41—C46 | 1.392 (4) | C64—C65 | 1.377 (5) |
| C41—C42 | 1.395 (4) | C64—H64 | 0.9500 |
| C42—C43 | 1.381 (5) | C65—C66 | 1.392 (5) |
| C42—H42 | 0.9500 | C65—H65 | 0.9500 |
| C43—C44 | 1.378 (6) | C66—H66 | 0.9500 |
| C43—H43 | 0.9500 | C62—H62 | 0.9500 |
| O1—Sn1—C41 | 118.04 (10) | C42—C43—H43 | 120.5 |
| O1—Sn1—C31 | 119.36 (10) | C43—C44—C45 | 120.6 (4) |
| C41—Sn1—C31 | 121.14 (12) | C43—C44—H44 | 119.7 |
| O1—Sn1—O2 | 70.89 (7) | C45—C44—H44 | 119.7 |
| C41—Sn1—O2 | 92.22 (9) | C44—C45—C46 | 120.3 (4) |
| C31—Sn1—O2 | 94.50 (10) | C44—C45—H45 | 119.9 |
| O1—Sn1—Cl1 | 89.87 (6) | C46—C45—H45 | 119.9 |
| C41—Sn1—Cl1 | 95.62 (8) | C45—C46—C41 | 119.9 (3) |
| C31—Sn1—Cl1 | 96.46 (8) | C45—C46—H46 | 120.0 |
| O2—Sn1—Cl1 | 160.69 (5) | C41—C46—H46 | 120.0 |
| O2—Sn2—C51 | 117.38 (10) | Sn2—O2—Sn1 | 108.75 (9) |
| O2—Sn2—C61 | 118.76 (10) | Sn2—O2—H2 | 124.0 |
| C51—Sn2—C61 | 122.37 (11) | Sn1—O2—H2 | 127.1 |
| O2—Sn2—O1 | 71.22 (7) | C21—N2—C25 | 118.0 (3) |
| C51—Sn2—O1 | 92.19 (9) | N2—C21—C22 | 124.0 (3) |
| C61—Sn2—O1 | 93.83 (10) | N2—C21—H21 | 118.0 |
| O2—Sn2—Cl2 | 90.44 (6) | C22—C21—H21 | 118.0 |
| C51—Sn2—Cl2 | 95.91 (8) | C21—C22—C23 | 117.2 (3) |
| C61—Sn2—Cl2 | 95.67 (9) | C21—C22—H22 | 121.4 |
| O1—Sn2—Cl2 | 161.66 (6) | C23—C22—H22 | 121.4 |
| Sn1—O1—Sn2 | 109.13 (9) | C24—C23—C22 | 120.0 (3) |
| Sn1—O1—H1 | 125.0 | C24—C23—H23 | 120.0 |
| Sn2—O1—H1 | 125.9 | C22—C23—H23 | 120.0 |
| C11—N1—C15 | 118.1 (3) | C23—C24—C25 | 119.5 (3) |
| N1—C11—C12 | 124.5 (3) | C23—C24—H24 | 120.3 |
| N1—C11—H11 | 117.8 | C25—C24—H24 | 120.3 |
| C12—C11—H11 | 117.8 | N2—C25—C24 | 121.3 (3) |
| C11—C12—C13 | 117.1 (3) | N2—C25—C26 | 116.2 (3) |
| C11—C12—H12 | 121.4 | C24—C25—C26 | 122.5 (3) |
| C13—C12—H12 | 121.4 | C27—C26—C25 | 126.5 (3) |
| C12—C13—C14 | 119.7 (3) | C27—C26—H26 | 116.8 |
| C12—C13—H13 | 120.2 | C25—C26—H26 | 116.8 |
| C14—C13—H13 | 120.2 | C26—C27—H27A | 120.0 |
| C13—C14—C15 | 119.2 (3) | C26—C27—H27B | 120.0 |
| C13—C14—H14 | 120.4 | H27A—C27—H27B | 120.0 |
| C15—C14—H14 | 120.4 | C56—C51—C52 | 118.7 (3) |
| N1—C15—C14 | 121.4 (3) | C56—C51—Sn2 | 117.8 (2) |
| N1—C15—C16 | 115.6 (3) | C52—C51—Sn2 | 123.3 (2) |
| C14—C15—C16 | 123.0 (3) | C53—C52—C51 | 120.1 (3) |
| C17—C16—C15 | 125.4 (3) | C53—C52—H52 | 120.0 |
| C17—C16—H16 | 117.3 | C51—C52—H52 | 120.0 |
| C15—C16—H16 | 117.3 | C54—C53—C52 | 120.5 (3) |
| C16—C17—H171 | 120.0 | C54—C53—H53 | 119.7 |
| C16—C17—H172 | 120.0 | C52—C53—H53 | 119.7 |
| H171—C17—H172 | 120.0 | C55—C54—C53 | 119.4 (4) |
| C32—C31—C36 | 118.6 (3) | C55—C54—H54 | 120.3 |
| C32—C31—Sn1 | 121.4 (2) | C53—C54—H54 | 120.3 |
| C36—C31—Sn1 | 119.9 (2) | C56—C55—C54 | 120.5 (4) |
| C33—C32—C31 | 120.6 (3) | C56—C55—H55 | 119.7 |
| C33—C32—H32 | 119.7 | C54—C55—H55 | 119.7 |
| C31—C32—H32 | 119.7 | C55—C56—C51 | 120.7 (3) |
| C34—C33—C32 | 120.3 (4) | C55—C56—H56 | 119.7 |
| C34—C33—H33 | 119.8 | C51—C56—H56 | 119.7 |
| C32—C33—H33 | 119.8 | C66—C61—C62 | 118.7 (3) |
| C35—C34—C33 | 119.6 (3) | C66—C61—Sn2 | 120.8 (2) |
| C35—C34—H34 | 120.2 | C62—C61—Sn2 | 120.3 (3) |
| C33—C34—H34 | 120.2 | C64—C63—C62 | 120.4 (3) |
| C34—C35—C36 | 120.8 (3) | C64—C63—H63 | 119.8 |
| C34—C35—H35 | 119.6 | C62—C63—H63 | 119.8 |
| C36—C35—H35 | 119.6 | C63—C64—C65 | 120.2 (4) |
| C35—C36—C31 | 120.2 (3) | C63—C64—H64 | 119.9 |
| C35—C36—H36 | 119.9 | C65—C64—H64 | 119.9 |
| C31—C36—H36 | 119.9 | C64—C65—C66 | 120.2 (4) |
| C46—C41—C42 | 118.6 (3) | C64—C65—H65 | 119.9 |
| C46—C41—Sn1 | 124.2 (2) | C66—C65—H65 | 119.9 |
| C42—C41—Sn1 | 117.0 (2) | C65—C66—C61 | 120.1 (3) |
| C43—C42—C41 | 121.5 (3) | C65—C66—H66 | 119.9 |
| C43—C42—H42 | 119.2 | C61—C66—H66 | 119.9 |
| C41—C42—H42 | 119.2 | C63—C62—C61 | 120.5 (4) |
| C44—C43—C42 | 119.0 (4) | C63—C62—H62 | 119.8 |
| C44—C43—H43 | 120.5 | C61—C62—H62 | 119.8 |
| D—H···A | D—H | H···A | D···A | D—H···A |
| O1—H1···N1 | 0.96 | 1.76 | 2.708 (3) | 167 |
| O2—H2···N2 | 0.96 | 1.76 | 2.720 (3) | 173 |
Acknowledgements
We thank the Deutsche Forschungsgemeinschaft and the Government of Lower-Saxony for funding the diffractometer and acknowledge support by Deutsche Forschungsgemeinschaft (DFG) and Open Access Publishing Fund of Osnabrück University.
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