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ISSN: 2056-9890

Synthesis, crystal structure and stability of a new isomer of bis­­(ethyl­ene­thio­urea)di­thio­cyanatocobalt(II)

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aInstitut für Anorganische Chemie, Universität Kiel, Max-Eyth.-Str. 2, 24118 Kiel, Germany
*Correspondence e-mail: [email protected]

Edited by W. T. A. Harrison, University of Aberdeen, United Kingdom (Received 24 June 2026; accepted 17 July 2026; online 23 July 2026)

The title compound, bis­(imidazolidine-2-thione-κS)di­thio­cyanato­cobalt(II), [Co(NCS)2(C3H6N2S)2], was prepared by the reaction of cobalt thio­cyanate with ethyl­ene­thio­urea in ethanol solution. The asymmetric unit (space group P21/c) consists of one cobalt cation, as well as two crystallographically independent thio­cyanate anions and two ethyl­ene­thio­urea ligands, all of them located in general positions. The metal cations are tetra­hedrally coordinated by two N-bonding anionic ligands and two ethyl­ene­thio­urea ligands into discrete complexes. These complexes are linked by N—H⋯S hydrogen bonds into layers. The IR spectrum is in agreement with the presence of a tetra­hedral coordination with N-bonding thio­cyanate anions and measurements using X-ray powder diffraction indicate that a pure crystalline phase has been obtained. The title compound represents a new isomer of Co(NCS)2(C3H6N2S)2, which was already reported in the literature in space group P1 [Mautner et al., (2018View full citation). Polyhedron 154, 436–442]. In contrast to the title compound, in the triclinic isomer the cobalt cations are octa­hedrally coordinated and linked into chains by μ-1,3-bridging thio­cyanate anions. Solvent-mediated conversion experiments starting from a mixture of both isomers show that the title complex is the thermodynamically stable form at room temperature.

1. Chemical context

Polymorphism and isomerism are widespread phenomena in coordination chemistry (Braga & Grepioni, 2000View full citation; Barnett et al., 2002View full citation; Moulton & Zaworotko, 2001View full citation). Different polymorphs or isomers are frequently found in, for example, coordination compounds based on transition-metal thio­cyanates with N-donor coligands, which might be traced back to the fact that this class of compounds shows a large structural variability, which originates in part from the different coordination modes of this anionic ligand but also from the fact that some transition-metal cations show variability in their coordination numbers (Krebs et al., 2021aView full citation; Wellm et al., 2020View full citation; Böhme et al., 2020View full citation; Neumann et al., 2018View full citation).

For many years, we and others have been especially inter­ested in cobalt thio­cyanate and seleno­cyanate compounds with the general composition Co(NCX)2(L)2 (X = S, Se and L = N-donor coligand) because some of them show inter­esting magnetic properties such as single-chain magnet (SCM) behavior (Wöhlert et al., 2012View full citation, 2013View full citation). This is the case in compounds in which the cobalt cations are octa­hedrally coordinated by two N- and two S-bonding thio­cyanate anions and two N-donor coligands and linked into chains by μ-1,3-bridging thio­cyanate anions. Such a coordination represents an MA2B2C2 system for which five isomers exist, namely one all-trans, three different ciscis–trans and one all-cis isomer. We found that for SCM behavior to be observed in compounds with linear chains, an all-trans coordination or a ciscistrans coordination with the coligands in trans-positions is needed (Böhme et al., 2020View full citation). The other isomers lead to the formation of corrugated chains, for which the magnetic exchange is suppressed (Böhme et al., 2020View full citation). There are a few additional compounds with this composition in which Co(NCS)2 layers are observed and that show ferromagnetic ordering at low temperatures (Suckert et al., 2016View full citation).

In the beginning, we focused on pyridine derivatives as coligands, for which the majority of compounds consist of linear chains. However, in the course of our systematic work we also used 4-di­methyl­amino­pyridine as coligand, but in contrast to all other ligands investigated before, discrete tetra­hedral complexes were obtained, which crystallize in different isomeric or polymorphic modifications and which represent an isomer of the compounds mentioned above (Näther et al., 2018View full citation; Krebs et al., 2021bView full citation). Such complexes are of less inter­est for our project because no SCM behavior can be observed. The reason why for some ligands chains and for some others discrete complexes are observed is still unknown.

In 2018, Mautner and coworkers reported on the synthesis, structure and properties of Co(NCS)2(4-meth­oxy­pyridine)2, which shows linear chains and SCM behavior (Mautner et al., 2018View full citation; Rams et al., 2020View full citation). However, under slightly different reaction conditions they were also able to prepare a second isomer with this composition that consists of discrete complexes. Unfortunately it was not determined which of the two isomers is thermodynamically stable at a given temperature.

Some time later, we became inter­ested in such compounds with coligands other than pyridine derivatives, to study the influence of the coligand on the structural and magnetic behavior. With ethyl­ene­thio­urea, we obtained a compound with the composition Co(NCS)2(ethyl­ene­thio­urea)2 (CSD refcode ZZZFAI01, space group PMathematical equation; Böhme et al., 2020View full citation) in which the cations are octa­hedrally coordinated with an all-trans coordination and linked into linear chains by the anionic ligands (Fig. 1[link]). Recently we tried to synthesize this compound again for additional investigations, but instead of the known chain isomer, the title compound was obtained and we now describe its crystal structure and thermodynamic stability using solvent-mediated conversion experiments.

[Scheme 1]
[Figure 1]
Figure 1
View of apart of a chain in the known isomer of Co(NCS)2(ethyl­ene­thio­urea)2.

2. Structural commentary

The asymmetric unit of the title compound, Co(NCS)2(C3H6N2S)2 (C3H6N2S = ethyl­ene­thio­urea), which crystallizes in space group P21/c, consists of one crystallographically independent cobalt cation, two independent thio­cyanat anions and two independent ethyl­ene­thio­urea ligands with all atoms lying on general positions. The metal cations are fourfold coordinated (Table 1[link]) by two N-bonding thio­cyanate anions and two ethyl­ene­thio­urea ligands in a slightly distorted tetra­hedral environment (Fig. 2[link]). The C11 ethyl­ene­thio­urea ring is an envelope with atom C12 as the flap whereas the C21 ring is twisted about the C22—C23 bond. Therefore, this structure is completely different from that of the known isomer of Co(NCS)2(ethyl­ene­thio­urea) already reported in the literature, which consists of octa­hedrally cobalt cations that are linked into chains via pairs of μ-1,3-bridging thio­cyanato anions (Fig. 1[link]).

Table 1
Selected geometric parameters (Å, °)

Co1—N1 1.9446 (15) Co1—S11 2.3111 (5)
Co1—N2 1.9544 (16) Co1—S21 2.3120 (5)
       
N1—Co1—N2 110.32 (7) S11—Co1—S21 113.076 (19)
N1—Co1—S11 114.80 (5) C1—N1—Co1 167.80 (15)
N2—Co1—S11 102.29 (5) C2—N2—Co1 171.01 (15)
N1—Co1—S21 100.61 (5) C11—S11—Co1 102.33 (6)
N2—Co1—S21 116.30 (5) C21—S21—Co1 110.89 (6)
[Figure 2]
Figure 2
Crystal structure of the title compound with labeling and displacement ellipsoids drawn at the 50% probability level.

Even if cobalt thio­cyanate compounds with an octa­hedral coordination and bridging anionic ligands represent the majority of structures, compounds with a tetra­hedral coordin­ation are also reported. These include, for example, Co(NCS)2(4-N,N′-di­methyl­amino­pyridine)2, which crystallizes in different polymorphic modifications [Neumann et al., 2018View full citation (refcode GIQPEE); Krebs et al., 2021bView full citation (GIQPEE01 and GIQPEE02)] as well as Co(NCS)2(3-amino­pyridine (ANU­MII; Mautner et al., 2021View full citation), Co(NCS)2(4-amino­pyridine)2 (UGUWEA; Sugiyama et al., 2015View full citation) Co(NCS)2(4-vinyl­pyridine)2 (BOZJUW; Foxman & Mazurek, 1982View full citation) and Co(NCS)2(3-methyl­pyridine)2 (EYARIG; Boeckmann et al., 2011View full citation).

3. Supra­molecular features

In the extended structure of the title compound, a number of N—H⋯S inter­actions are observed (Table 2[link]), with some of them at relatively short H⋯S distances and N—H⋯S angles close to linearity, indicating hydrogen bonding rather than incidental contacts (Table 2[link]). This leads to the formation of chains, which propagate in the crystallographic a-axis direction (Fig. 3[link]). These chains are further connected into layers that lie parallel to the bc plane (Fig. 4[link]). Additional N—H⋯S inter­actions are found between the layers, but at long distances and angles far from 180°.

Table 2
Hydrogen-bond geometry (Å, °)

D—H⋯A D—H H⋯A DA D—H⋯A
N11—H11⋯S2i 0.88 2.57 3.3693 (16) 152
N12—H12⋯S11ii 0.88 2.95 3.5571 (17) 128
N12—H12⋯S21iii 0.88 2.97 3.4542 (15) 116
C12—H12A⋯S21iii 0.99 2.91 3.4371 (19) 114
C13—H13B⋯S1iii 0.99 2.95 3.816 (2) 147
N21—H21⋯S11iv 0.88 2.74 3.5823 (16) 161
N22—H22⋯S2v 0.88 2.83 3.3560 (16) 120
N22—H22⋯S11 0.88 2.73 3.5346 (15) 152
C22—H22A⋯S2i 0.99 2.96 3.800 (2) 143
Symmetry codes: (i) Mathematical equation; (ii) Mathematical equation; (iii) Mathematical equation; (iv) Mathematical equation; (v) Mathematical equation.
[Figure 3]
Figure 3
View onto a layer in the crystal structure of the title compound. Inter­molecular N—H⋯S hydrogen bonding is shown as dashed lines.
[Figure 4]
Figure 4
Crystal structure of the title compound in a view along the crystallographic a-axis direction. Inter­molecular N—H⋯S hydrogen bonding is shown as dashed lines.

4. Physical characterization

The IR spectrum reveals that the CN stretching vibration of the thio­cyanate anions occurs at 2056 cm−1, in agreement with the presence of tetra­hedral coordination (Fig. 5[link]). The bands between 3000 and 3500 cm−1 can be assigned to the N—H stretching vibration with this group involved in inter­molecular hydrogen bonding.

[Figure 5]
Figure 5
IR spectrum of the title compound. The value of the CN stretching vibration of the thio­cyanate anions is given.

Comparison of the experiment X-ray powder pattern with that calculated using single crystal data reveal that a pure sample has been obtained (Fig. 6[link]).

[Figure 6]
Figure 6
Experimental (top) and calculated (bottom)X-ray powder patterns of the title compound.

To investigate which of the two modifications of Co(NCS)2(C3H6N2S)2 is the thermodynamically stable form at room temperature, solvent-mediated conversion experiments were performed. In this experiment, a mixture of the two isomers with excess of solid was stirred in ethanol at room temperature and these residues were investigated by X-ray powder diffraction after one and four days (Fig. 7[link]). This shows that the reflections of the chain isomer disappear completely, which proves that the title compound represents the thermodynamically stable isomer at room temperature, where the chain isomer is metastable.

[Figure 7]
Figure 7
Calculated X-ray powder pattern of the chain isomer (A) and the title compound (B) as well as experimental pattern of a mixture of both isomers (C) and after stirring this mixture in ethanol for 1 d (D) and 4 d (E).

5. Database survey

First of all it may be mentioned that beside the chain isomer of Co(NCS)2(C3H6N2S)2 (CSD refcode ZZZFAI01; Jochim et al., 2020aView full citation), another compound with same composition is reported in the Cambridge Structural Database [CSD Version 5.43, update of May 2026 (Groom et al., 2016View full citation), search with CONQUEST (Bruno et al., 2002View full citation)] for which only unit-cell parameters are reported (ZZZFAI; Nardelli & Chierici, 1958View full citation). According to the entry in the CSD, this compound should consist of discrete complexes but the unit-cell parameters are very similar to the chain isomer of this compound. Moreover, it is stated that this form crystallizes in the triclinic system with Z = 1, in which space group PMathematical equation is impossible. The same authors also reported unit-cell parameters for the corresponding Mn and Zn compounds. The unit-cell parameters for the Mn compound (ZZZEZA; Nardelli & Chierici, 1958View full citation) are also very similar to those of the chain isomer, whereas the Zn compound is isotypic to the title complex (ZZZDUE; Nardelli & Chierici, 1958View full citation). Later, Nardelli and co-workers reported the crystal structure of Ni(NCS)2(C3H6N2S)2 (ESUNSC10; Nardelli et al., 1966View full citation), which consists of chains and is isotypic to the chain isomer of the corresponding Co compound. The crystal structure of the Cd compound is also published and consists of chains, but is not isotypic to the Co and Ni compounds (ETCDTH; Calvaca et al., 1960View full citation).

Finally, there are some compounds with Co(NCS)2 and other thio­urea derivatives as ligand reported in the CSD, including Co(NCS)2(tetra­methyl­thio­urea)2 (WUQTIO; Jochim et al., 2020bView full citation), Co(NCS)2(N,N′-di­methyl­thio­urea)2 (QUSZAI; Jochim et al., 2020cView full citation) and Co(NCS)2(1,3-di­cyclo­hexyl­thio­urea)2 (LAMPUO; Krebs et al., 2022View full citation). All of these compounds consist of discrete complexes with a tetra­hedral coordination. However, in Co(NCS)2(thio­urea)2, the cobalt cations are linked by pairs of μ-1,3-bridging thio­cyanate into chains (LEHQAS; Rajarajan et al., 2012View full citation).

6. Synthesis and crystallization

Cobalt thio­cyanate and ethyl­ene­thio­urea were purchased from Sigma-Aldrich. 87.6 mg (0.50 mmol) of Co(NCS)2 and 102.4 mg (1.0 mmol) of ethyl­ene­thio­urea were stirred in 3 ml of ethanol for 3 d. Then, 3 ml of n-heptane were added and stirred for another 10 min. The precipitate was filtered off, leading to a microcrystalline powder of the title compound. As the solvent slowly evaporated from the filtrate, blue block-shaped crystals suitable for single crystal X-ray diffraction were obtained.

The chain isomer of Co(NCS)2(C3H6N2S)2 used for the solvent-mediated conversion experiments was prepared according to literature procedures (Jochim et al., 2020aView full citation).

The IR spectroscopic measurements were performed with an ATI Mattson Genesis Series FTIR Spectrometer, control software: WINFIRST, from ATI Mattson in ATR mode. The PXRD measurements were performed with Cu Kα1 radiation (λ = 1.540598 Å) using a Stoe Transmission Powder Diffraction System (STADI P) equipped with a MYTHEN 1K detector and a Johansson-type Ge(111) monochromator.

7. Refinement

Crystal data, data collection and structure refinement details are summarized in Table 3[link].The C-bound hydrogen atoms were positioned with idealized geometry and were refined isotropically with Uiso(H) = 1.2 Ueq(C) using a riding model. The N-bound hydrogen atoms were located in difference maps, their bond lengths set to ideal values and finally they were refined isotropically with Uiso(H) = 1.2 Ueq(N) using a riding model.

Table 3
Experimental details

Crystal data
Chemical formula [Co(NCS)2(C3H6N2S)2]
Mr 379.41
Crystal system, space group Monoclinic, P21/c
Temperature (K) 170
a, b, c (Å) 7.7636 (2), 9.1388 (3), 21.9230 (5)
β (°) 96.552 (2)
V3) 1545.28 (7)
Z 4
Radiation type Mo Kα
μ (mm−1) 1.65
Crystal size (mm) 0.18 × 0.11 × 0.08
 
Data collection
Diffractometer Stoe IPDS2
Absorption correction Numerical (X-SHAPE and X-RED 32; Stoe, 2008View full citation)
Tmin, Tmax 0.638, 0.798
No. of measured, independent and observed [I > 2σ(I)] reflections 21701, 3351, 3080
Rint 0.022
(sin θ/λ)max−1) 0.639
 
Refinement
R[F2 > 2σ(F2)], wR(F2), S 0.025, 0.062, 1.08
No. of reflections 3351
No. of parameters 172
H-atom treatment H-atom parameters constrained
Δρmax, Δρmin (e Å−3) 0.30, −0.23
Computer programs: X-AREA and X-RED (Stoe, 2008View full citation), SHELXT (Sheldrick, 2015aView full citation), SHELXL (Sheldrick, 2015bView full citation), DIAMOND (Brandenburg, 1999View full citation), XP in SHELXTL-PC (Sheldrick, 2008View full citation) and publCIF (Westrip, 2010View full citation).

Supporting information


Computing details top

Bis(imidazolidine-2-thione-κS)dithiocyanatocobalt(II) top
Crystal data top
[Co(NCS)2(C3H6N2S)2]F(000) = 772
Mr = 379.41Dx = 1.631 Mg m3
Monoclinic, P21/cMo Kα radiation, λ = 0.71073 Å
a = 7.7636 (2) ÅCell parameters from 8000 reflections
b = 9.1388 (3) Åθ = 10.0–25.0°
c = 21.9230 (5) ŵ = 1.65 mm1
β = 96.552 (2)°T = 170 K
V = 1545.28 (7) Å3Block, blue
Z = 40.18 × 0.11 × 0.08 mm
Data collection top
Stoe IPDS-2
diffractometer
3080 reflections with I > 2σ(I)
ω scansRint = 0.022
Absorption correction: numerical
(X-Shape and X-Red 32; Stoe, 2008)
θmax = 27.0°, θmin = 1.9°
Tmin = 0.638, Tmax = 0.798h = 99
21701 measured reflectionsk = 1111
3351 independent reflectionsl = 2828
Refinement top
Refinement on F2Primary atom site location: dual
Least-squares matrix: fullHydrogen site location: mixed
R[F2 > 2σ(F2)] = 0.025H-atom parameters constrained
wR(F2) = 0.062 w = 1/[σ2(Fo2) + (0.031P)2 + 0.5882P]
where P = (Fo2 + 2Fc2)/3
S = 1.08(Δ/σ)max = 0.001
3351 reflectionsΔρmax = 0.30 e Å3
172 parametersΔρmin = 0.23 e Å3
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.

Fractional atomic coordinates and isotropic or equivalent isotropic displacement parameters (Å2) top
xyzUiso*/Ueq
Co10.21856 (3)0.34622 (2)0.40792 (2)0.03252 (8)
N10.2712 (2)0.27718 (18)0.49188 (7)0.0412 (3)
C10.3166 (2)0.2152 (2)0.53726 (8)0.0372 (4)
S10.37618 (8)0.12604 (6)0.59973 (2)0.05231 (14)
N20.1156 (2)0.18903 (18)0.35535 (7)0.0413 (3)
C20.0766 (2)0.08932 (19)0.32363 (7)0.0336 (3)
S20.02460 (6)0.05075 (5)0.27987 (2)0.03993 (11)
S110.00832 (5)0.52604 (5)0.39459 (2)0.03687 (11)
C110.1030 (2)0.66747 (18)0.43786 (7)0.0321 (3)
N110.0839 (2)0.80539 (18)0.42222 (7)0.0437 (4)
H110.0293160.8329960.3866900.052*
N120.2017 (2)0.65511 (16)0.49075 (7)0.0410 (3)
H120.2138820.5754910.5134020.049*
C120.2443 (3)0.7985 (2)0.51792 (9)0.0440 (4)
H12A0.3698970.8072330.5314930.053*
H12B0.1785070.8175900.5532220.053*
C130.1886 (3)0.9017 (2)0.46461 (9)0.0436 (4)
H13A0.1193470.9845400.4777600.052*
H13B0.2898890.9403370.4461110.052*
S210.48883 (6)0.42711 (5)0.38813 (2)0.03941 (11)
C210.4724 (2)0.53905 (18)0.32552 (7)0.0311 (3)
N210.60888 (19)0.57669 (18)0.29779 (7)0.0393 (3)
H210.7171270.5594780.3126200.047*
N220.33055 (18)0.59910 (18)0.29709 (7)0.0375 (3)
H220.2295030.5731460.3082040.045*
C220.3662 (2)0.6770 (2)0.24139 (9)0.0457 (4)
H22A0.3116270.7751010.2389030.055*
H22B0.3252860.6207570.2039280.055*
C230.5628 (2)0.6878 (3)0.25054 (9)0.0476 (5)
H23A0.6134160.6648370.2122080.057*
H23B0.6014040.7864240.2649680.057*
Atomic displacement parameters (Å2) top
U11U22U33U12U13U23
Co10.03490 (13)0.03183 (12)0.03132 (12)0.00233 (9)0.00588 (9)0.00202 (8)
N10.0486 (9)0.0421 (8)0.0333 (7)0.0018 (7)0.0065 (6)0.0033 (6)
C10.0409 (9)0.0361 (9)0.0356 (9)0.0001 (7)0.0084 (7)0.0041 (7)
S10.0693 (3)0.0490 (3)0.0373 (2)0.0069 (2)0.0002 (2)0.0068 (2)
N20.0449 (9)0.0403 (8)0.0390 (8)0.0043 (7)0.0061 (6)0.0006 (7)
C20.0322 (8)0.0377 (9)0.0313 (8)0.0002 (7)0.0048 (6)0.0058 (7)
S20.0456 (2)0.0387 (2)0.0345 (2)0.00118 (18)0.00043 (17)0.00220 (17)
S110.0325 (2)0.0404 (2)0.0370 (2)0.00086 (17)0.00088 (16)0.00048 (17)
C110.0289 (8)0.0362 (8)0.0318 (8)0.0033 (6)0.0070 (6)0.0063 (6)
N110.0472 (9)0.0384 (8)0.0429 (8)0.0003 (7)0.0057 (7)0.0120 (7)
N120.0519 (9)0.0335 (8)0.0355 (8)0.0029 (7)0.0048 (6)0.0055 (6)
C120.0503 (11)0.0363 (9)0.0436 (10)0.0002 (8)0.0031 (8)0.0005 (8)
C130.0460 (10)0.0342 (9)0.0498 (10)0.0016 (8)0.0021 (8)0.0028 (8)
S210.0319 (2)0.0459 (2)0.0396 (2)0.00271 (17)0.00027 (16)0.01317 (18)
C210.0307 (8)0.0317 (8)0.0309 (8)0.0011 (6)0.0034 (6)0.0025 (6)
N210.0280 (7)0.0483 (9)0.0426 (8)0.0028 (6)0.0085 (6)0.0102 (7)
N220.0280 (7)0.0475 (8)0.0376 (7)0.0007 (6)0.0065 (6)0.0111 (6)
C220.0388 (10)0.0556 (12)0.0437 (10)0.0054 (8)0.0096 (8)0.0184 (9)
C230.0401 (10)0.0595 (12)0.0447 (10)0.0002 (9)0.0110 (8)0.0180 (9)
Geometric parameters (Å, º) top
Co1—N11.9446 (15)C12—H12A0.9900
Co1—N21.9544 (16)C12—H12B0.9900
Co1—S112.3111 (5)C13—H13A0.9900
Co1—S212.3120 (5)C13—H13B0.9900
N1—C11.164 (2)S21—C211.7050 (17)
C1—S11.6153 (18)C21—N221.321 (2)
N2—C21.165 (2)C21—N211.326 (2)
C2—S21.6228 (18)N21—C231.466 (2)
S11—C111.7182 (18)N21—H210.8800
C11—N111.310 (2)N22—C221.467 (2)
C11—N121.320 (2)N22—H220.8801
N11—C131.459 (2)C22—C231.520 (3)
N11—H110.8800C22—H22A0.9900
N12—C121.462 (2)C22—H22B0.9900
N12—H120.8799C23—H23A0.9900
C12—C131.526 (3)C23—H23B0.9900
N1—Co1—N2110.32 (7)N11—C13—H13A111.4
N1—Co1—S11114.80 (5)C12—C13—H13A111.4
N2—Co1—S11102.29 (5)N11—C13—H13B111.4
N1—Co1—S21100.61 (5)C12—C13—H13B111.4
N2—Co1—S21116.30 (5)H13A—C13—H13B109.3
S11—Co1—S21113.076 (19)C21—S21—Co1110.89 (6)
C1—N1—Co1167.80 (15)N22—C21—N21110.04 (15)
N1—C1—S1178.59 (18)N22—C21—S21127.65 (13)
C2—N2—Co1171.01 (15)N21—C21—S21122.30 (13)
N2—C2—S2179.20 (17)C21—N21—C23111.12 (15)
C11—S11—Co1102.33 (6)C21—N21—H21124.3
N11—C11—N12110.46 (16)C23—N21—H21122.1
N11—C11—S11123.40 (13)C21—N22—C22111.61 (14)
N12—C11—S11126.14 (13)C21—N22—H22118.6
C11—N11—C13112.06 (15)C22—N22—H22128.3
C11—N11—H11122.4N22—C22—C23101.74 (14)
C13—N11—H11124.6N22—C22—H22A111.4
C11—N12—C12111.27 (15)C23—C22—H22A111.4
C11—N12—H12125.5N22—C22—H22B111.4
C12—N12—H12120.4C23—C22—H22B111.4
N12—C12—C13102.19 (15)H22A—C22—H22B109.3
N12—C12—H12A111.3N21—C23—C22102.05 (14)
C13—C12—H12A111.3N21—C23—H23A111.4
N12—C12—H12B111.3C22—C23—H23A111.4
C13—C12—H12B111.3N21—C23—H23B111.4
H12A—C12—H12B109.2C22—C23—H23B111.4
N11—C13—C12101.73 (15)H23A—C23—H23B109.2
Co1—S11—C11—N11143.67 (14)Co1—S21—C21—N2212.57 (18)
Co1—S11—C11—N1237.17 (16)Co1—S21—C21—N21166.68 (13)
N12—C11—N11—C135.1 (2)N22—C21—N21—C237.9 (2)
S11—C11—N11—C13175.63 (13)S21—C21—N21—C23172.69 (14)
N11—C11—N12—C125.5 (2)N21—C21—N22—C224.9 (2)
S11—C11—N12—C12173.74 (14)S21—C21—N22—C22174.42 (14)
C11—N12—C12—C1312.9 (2)C21—N22—C22—C2314.7 (2)
C11—N11—C13—C1212.6 (2)C21—N21—C23—C2216.5 (2)
N12—C12—C13—N1114.3 (2)N22—C22—C23—N2117.5 (2)
Hydrogen-bond geometry (Å, º) top
D—H···AD—HH···AD···AD—H···A
N11—H11···S2i0.882.573.3693 (16)152
N12—H12···S11ii0.882.953.5571 (17)128
N12—H12···S21iii0.882.973.4542 (15)116
C12—H12A···S21iii0.992.913.4371 (19)114
C13—H13B···S1iii0.992.953.816 (2)147
N21—H21···S11iv0.882.743.5823 (16)161
N22—H22···S2v0.882.833.3560 (16)120
N22—H22···S110.882.733.5346 (15)152
C22—H22A···S2i0.992.963.800 (2)143
Symmetry codes: (i) x, y+1, z; (ii) x, y+1, z+1; (iii) x+1, y+1, z+1; (iv) x+1, y, z; (v) x, y+1/2, z+1/2.
 

Acknowledgements

Financial support by the State of Schleswig-Holstein is gratefully acknowledged.

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