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ISSN: 2056-9890

Synthesis, crystal structure and DFT study of carbon­yl[3-(dibenzo[b,d]thio­phen-4-yl)-6-(pyridin-2-yl-κN)pyridazine-κN1]bis­­(tri­methyl­phosphane)iron(0)

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aDepartment of Chemistry, Faculty of Science, Kanagawa University, Kanagawa-ku, Yokohama 221-8686, Japan
*Correspondence e-mail: [email protected]

Edited by T. Akitsu, Tokyo University of Science, Japan (Received 13 November 2025; accepted 4 December 2025; online 1 January 2026)

The title compound, [Fe(C21H13N3S)(CO)(PMe3)2] (2), bearing a 3-(dibenzo[b,d]thio­phen-4-yl)-6-(pyridin-2-yl)pyridazine ligand was obtained by the reaction of [Fe(C21H13N3S)(CO)3] (1) with [Fe(PMe3)4]. Crystal structure analysis of 2 revealed that the N,N-bidentate and three monodentate ligands form a five-coordinate square-pyramidal geometry around Fe, which differs from the trigonal–bipyramidal geometry observed in 1. The steric and electronic factors were investigated by combining crystal structure and density functional theory (DFT) calculations. Compared with CO, the better σ donor properties of PMe3 induce the square-pyramidal geometry of 2, and a significant π-back-bonding inter­action was confirmed between Fe and the pyridazine moiety.

1. Chemical context

The utilization of earth-abundant transition-metal catalysts has become increasingly important, and iron-catalyzed reactions are attractive research topics (Bolm et al., 2004View full citation; Bauer & Knölker, 2015View full citation; Takeda et al., 2017View full citation; Ekspong et al., 2021View full citation; Gao et al., 2022View full citation; Sila et al., 2024View full citation). Low-valent iron complexes have been studied intensively because their unsaturated coordination sites are highly active and play a pivotal role in catalytic reactions (Toya et al., 2017View full citation; Takeshita et al., 2018View full citation; Nakajima et al., 2025View full citation; Zhang et al., 2025View full citation; Wang et al., 2025View full citation). Iron carbonyls are attractive catalysts and precatalysts for fundamental organic and inorganic reactions (Schroeder & Wrighton, 1976View full citation; Petricci et al., 2018View full citation; Hirayama et al., 2025View full citation; Torrent et al., 2000View full citation). For example, [Fe(CO)5] catalyzes the watergas shift reaction and isomerization of olefins (Schroeder & Wrighton, 1976View full citation), and [Fe2(CO)9] and [Fe3(CO)12] are catalyst precursors for the reductive amination of aldehydes (Petricci et al., 2018View full citation; Hirayama et al., 2025View full citation). Furthermore, various diiron carbonyl complexes with thiol­ate ligands have been synthesized from [Fe(CO)5] and are promising candidates for the active-site model of [FeFe]-hydrogenases (Tard & Pickett, 2009View full citation).

We previously reported diiron hydrogenase mimics bearing thiol­ate ligands, which were synthesized by the photoreactions of [Fe(CO)5] with dibenzo­thio­phene derivatives containing Schiff base or pyridine moieties via C—S bond cleavage (Hirotsu et al., 2012View full citation, 2014View full citation; Nakae et al., 2015View full citation). However, the corresponding reaction with 3-(dibenzo[b,d]thio­phen-4-yl)-6-(pyridin-2-yl)pyridazine (dbtpdzpy) gave the iron(0) carbonyl complex [Fe(dbtpdzpy)(CO)3] (1), in which the dbtpdzpy ligand is bound to Fe in an N,N-bidentate fashion, forming a five-membered chelate ring (Futaki et al., 2025View full citation). We carried out the reaction of 1 with the reactive iron(0) complex [Fe(PMe3)4] in THF, expecting the remaining N atom to act as a directing group for C—S bond activation. However, the N,S-coordination site remained intact, and the five-coordinate iron(0) complex [Fe(dbtpdzpy)(CO)(PMe3)2] (2) was obtained, in which the two carbonyl ligands in 1 are replaced by PMe3 dissociated from [Fe(PMe3)4]. The reaction of 1 with PMe3 gives dbtpdzpy and carbonyl tri­methyl­phosphane iron(0) complexes such as [Fe(CO)3(PMe3)2]; therefore, this ligand scrambling reaction provides a suitable route for the preparation of 2. The crystal structure of the bis­(tri­methyl­phosphane) iron(0) complex 2 showed geometrical changes around the Fe from 1, including a significant shortening of the Fe—N(pyridazine) bonds, which is discussed in terms of the steric and electronic effects of PMe3.

[Scheme 1]

2. Structural commentary

Complex 2 crystallizes in the centrosymmetric space group P21/c (No. 14) with two independent [Fe(dbtpdzpy)(CO)(PMe3)2] mol­ecules, 2A and 2B, in the asymmetric unit (Fig. 1[link]). Selected bond distances and angles are listed in Table 1[link]. The five-coordinate iron center is chelated by the N,N-bidentate ligand dbtpdzpy, and the carbonyl ligand is located trans to the pyridazine N atom. The remaining sites are occupied by two PMe3 ligands, and the dibenzo[b,d]thio­phen-4-yl group is oriented away from the PMe3 ligands. This contrasts with the near planar arrangement of the aromatic rings observed in 1. Both mol­ecules 2A and 2B have a distorted square-pyramidal coordination geometry, and one of the two PMe3 ligands occupies the apical position of the pyramid. The structural index parameter τ is 0.18 for 2A and 0.023 for 2B, suggesting a larger distortion of 2A from the ideal square-pyramidal geometry (Addison et al., 1984View full citation). The differences are visualized by overlaying the mol­ecular structures of 2A and 2B (symmetry operation: x − 1, −y + [{3\over 2}], z − [{1\over 2}]), where the central pyridazine ring is superposed (Fig. 2[link]). Significant differences were detected in the two N(pyridine)—Fe—P angles and the inter­planar angles between the dibenzo­thio­phene/pyridazine/pyridine moieties.

Table 1
Selected geometric parameters (Å, °)

Fe1—P1 2.2144 (4) Fe2—P3 2.2087 (4)
Fe1—P2 2.1847 (5) Fe2—P4 2.1862 (4)
Fe1—N2 1.9054 (12) Fe2—N5 1.9117 (12)
Fe1—N3 1.9464 (13) Fe2—N6 1.9434 (13)
Fe1—C22 1.7426 (17) Fe2—C50 1.7371 (16)
       
H9⋯C17i 2.676 H23C⋯C34iii 2.824
H15⋯C34ii 2.704 H25C⋯C52v 2.834
H2⋯C43ii 2.730 H49vi⋯H32iii 2.336
C8⋯H53Biii 2.755 C6⋯H30 2.841
H15⋯C36ii 2.770 H23B⋯S2iii 2.943
S1⋯C42ii 3.389 H5⋯C19i 2.843
O2⋯H48iv 2.616 H19⋯O2iv 2.664
H18⋯C32ii 2.798    
       
P2—Fe1—P1 99.457 (18) P4—Fe2—P3 98.499 (17)
N2—Fe1—P1 91.04 (4) N5—Fe2—P3 94.01 (4)
N2—Fe1—P2 102.65 (4) N5—Fe2—P4 102.48 (4)
N3—Fe1—P1 153.19 (4) N6—Fe2—P3 163.19 (4)
C22—Fe1—N2 163.93 (7) C50—Fe2—N5 161.83 (6)
Symmetry codes: (i) [x, -y+{\script{3\over 2}}, z+{\script{1\over 2}}]; (ii) [x, -y+{\script{3\over 2}}, z-{\script{1\over 2}}]; (iii) [x-1, -y+{\script{3\over 2}}, z-{\script{1\over 2}}]; (iv) [-x+2, -y+1, -z+1]; (v) [x-1, y, z-1]; (vi) [-x+1, -y+1, -z+1].
[Figure 1]
Figure 1
Perspective view of mol­ecules (a) 2A and (b) 2B in 2 with displacement ellipsoids at the 50% probability level. Hydrogen atoms are omitted for clarity.
[Figure 2]
Figure 2
Overlay of mol­ecules 2A (green, symmetry operation: x, y, z) and 2B (magenta, symmetry operation: x − 1, −y + [{3\over 2}], z − [{1\over 2}]).

In the crystal structure of 2, the two PMe3 ligands occupy the less crowded apical and basal positions. The stronger σ donor properties of PMe3 relative to CO make the Fe center of 2 more electron-rich than that of 1. This affects the bond lengths around Fe due to enhanced π-back-bonding inter­actions. The Fe—C(carbon­yl) bond lengths of 2 [1.7426 (17), 1.7371 (16) Å] are shorter than those of 1 [1.771 (2), 1.801 (2), 1.7774 (18) Å]. This is consistent with a large red shift of the CO stretching frequency for 2 (1844 cm−1) compared to 1 (1984 cm−1, 1925 cm−1, 1894 cm−1). Furthermore, the Fe—N(pyridazine) bond lengths of 2 [1.9054 (12), 1.9117 (12) Å] are approximately 0.04 Å shorter than that of 1 [1.9487 (14) Å], whereas the N—N(coordinated) [1.3736 (17), 1.3826 (16) Å] and N(coordinated)—C [1.3954 (18), 1.3964 (18) Å] bond lengths in the pyridazine ring of 2 are longer than those of 1 [N—N(coordinated), 1.3600 (18) Å; N(coordinated)—C, 1.363 (2) Å], respectively. These findings are consistent with the moderate π acceptor character of pyridazine.

3. Density functional theory calculations

To analyze τ value differences, the structures of 2 and related complexes were optimized by density functional theory (DFT) calculations at the B3LYP/6-311+G(d,p) level. All DFT calculations in this study were carried out using the Gaussian 16 program (Frisch et al., 2016View full citation), and the results were visualized using the GaussView 6.0 software (Dennington et al., 2016View full citation). The resulting structural indices τ and selected geometric parameters are summarized in Table 2[link]. The crystal structures of 2A and 2B were used as the initial models for the calculations, which yielded identical results (Fig. 3[link]a). The τ value of 0.017 for the optimized structure is close to that of 2B. To exclude the influence of the dibenzo­thio­phene moiety, the structure of [Fe(pypdz)(CO)(PMe3)2] (3) (pypdz = 3-(pyridin-2-yl)pyridazine) was also optimized (Fig. 3[link]b), and a τ value of 0.045 was obtained. These results suggest that the geometry around the Fe atom of 2A is more strongly influenced by the crystal packing effects, as mentioned later.

Table 2
Structural indices (τ) and geometric parameters (Å, °) for experimental (1, 2A in 2, 2B in 2) and computational (2, 3, 4, 5) results

  1a 2Ab 2Bb 2c 3c 4c 5c
τ 0.649 0.179 0.023 0.017 0.045 0.293 0.759
Fe—N(pyridazine) 1.9487 (14) 1.9054 (12) 1.9117 (12) 1.914 1.909 1.892 1.927
Fe—N(pyridine) 1.9622 (14) 1.9464 (13) 1.9434 (13) 1.971 1.971 1.966 1.987
N—Fe—N 80.27 (6) 80.70 (5) 80.86 (5) 80.75 80.65 80.86 80.31
Inter­planar angled 3.94 (7) 46.79 (4) 52.56 (4) 55.79
Inter­planar anglee 4.02 (9) 3.03 (8) 9.63 (8) 0.57 1.18 0.35 0
Notes: (a) Futaki et al. (2025View full citation); (b) experimental data; (c) data from DFT calculations; (d) inter­planar angles were calculated as the dihedral angle between the least-squares planes of the dibenzo­thio­phene and pyridazine moieties; (e) inter­planar angles were calculated as the dihedral angle between the least-squares planes of the pyridazine and pyridine moieties.
[Figure 3]
Figure 3
Optimized structures of (a) 2, (b) [Fe(pypdz)(CO)(PMe3)2] (3), (c) [Fe(pypdz)(CO)(PH3)2] (4), and (d) [Fe(pypdz)(CO)3] (5). (e) HOMO of 3 (isovalue = 0.03 Bohr−3/2). Hydrogen atoms are omitted for clarity.

The square-pyramidal geometry of 2 differs from the trigonal–bipyramidal geometry of 1 (τ = 0.65). The pyridazine moiety in 1 occupies an equatorial position, which is likely due to its better π acceptor properties than those of pyridine. The bite angles of the N,N-chelate in 2A [80.70 (5)°] and 2B [80.86 (5)°] are comparable to that in 1 [80.27 (6)°)]. To conform the preference for the square-pyramidal geometry in 2 while excluding the packing and substituent effects, the structure of the analogous iron complex with the less bulky PH3 ligands, [Fe(pypdz)(CO)(PH3)2] (4), was optimized by DFT calculations (Fig. 3[link]c). The τ value of 0.29 suggests that complex 4 has a distorted square-pyramidal geometry. Furthermore, the optimized structure of [Fe(pypdz)(CO)3] (5) (Fig. 3[link]d, τ = 0.76) is similar to that of the bi­pyridine complex [Fe(bpy)(CO)3] (bpy = 2,2′-bi­pyridine) with a trigonal–bipyramidal geometry: τ = 0.83 (Calderazzo et al., 2002View full citation), 0.81 (DelaVarga et al., 2003View full citation). Therefore, the geometrical change between 1 and 2 is mainly attributable to the electronic effect of the PMe3 ligand, which is a better σ-donor and poorer π-acceptor ligand than CO. Fig. 3[link]e shows the HOMO of the bis­(tri­methyl­phosphane) complex 2, which is located over the pypdz ligand and the iron center. This mol­ecular orbital is a combination of the metal d orbital and the LUMO of pypdz, showing the π-back-donation from Fe to pypdz. Natural population analysis of 3 (natural charge (e): Fe, −1.145; pyridine, −0.042; pyridazine, −0.241) and 5 (natural charge (e): Fe, −1.240; pyridine, 0.165; pyridazine, 0.016) also revealed that the pyridazine moiety in the PMe3 complex 3 effectively accepts electron density from Fe: the difference in natural charge between 3 and 5 is 0.207e in the pyridine moiety and 0.257e in the pyridazine moiety.

4. Supra­molecular features

Mol­ecules 2A (symmetry operation: x, y, z) and 2B (symmetry operation: x − 1, −y + [{3\over 2}], z − [{1\over 2}]) are related by a pseudo C2 axis along the c axis in the crystal, and four pairs located on the ab plane are shown in Fig. 4[link]. The PMe3 ligand at the basal position is located near the dibenzo­thio­phene moiety of the paired mol­ecule. The basal PMe3 ligands are fitted into a cavity consisting of aromatic ligands. Some short contacts are found between 2A and 2B, mainly along the a axis, which are attributed to C—H⋯π inter­actions: e.g., H15⋯C34(x, −y + [{3\over 2}], z − [{1\over 2}]), H2⋯C43(x, −y + [{3\over 2}], z − [{1\over 2}]) C8⋯C53B(x − 1, −y + [{3\over 2}], z − [{1\over 2}]) (Table 1[link]).

[Figure 4]
Figure 4
Partial view of the crystal packing of 2, showing a pair of 2A (green) and 2B (magenta) mol­ecules. Short contacts are shown as dashed lines. [Symmetry codes: (i) x, y, z; (ii) x + 1, y, z; (iii) −x, y − [{1\over 2}], −z + [{1\over 2}]; (iv) −x + 1, y − [{1\over 2}], −z + [{1\over 2}]; (v) x − 1, −y + [{3\over 2}], z − [{1\over 2}]; (vi) x, −y + [{3\over 2}], z − [{1\over 2}]; (vii) −x + 1, −y + 1, −z + 1; (viii) −x + 2, −y + 1, −z + 1.]

Fig. 5[link] shows the crystal packing of 2 along the b axis. The layers of 2A and 2B are parallel to the bc plane and stacked alternately along the a axis. As shown in Fig. 6[link], short contacts due to C—H⋯π inter­actions are observed only in the 2A layer: H9⋯C17(x, −y + [{3\over 2}], z + [{1\over 2}]), H5⋯C19(x, −y + [{3\over 2}], z + [{1\over 2}]) (Table 1[link]). The crystal packing affects the inter­planar angles of the dibenzo­thio­phene and pyridazine moieties of 2A. This induces a deviation in the N(pyridine)—Fe—P angles through steric inter­actions. Therefore, 2A is more distorted from the ideal square-pyramidal geometry than 2B.

[Figure 5]
Figure 5
Crystal packing diagram of 2 along the b axis, showing the layers of 2A (green) and 2B (magenta).
[Figure 6]
Figure 6
Partial view of the crystal packing of 2, showing the layers of 2A. Short contacts are shown as dashed lines. [Symmetry codes: (i) x, y, z + 1; (ii) x, −y + [{3\over 2}], z + [{1\over 2}]; (iii) x, y, z; (iv) x, −y + [{3\over 2}], z − [{1\over 2}]; (v) −x + 1, y − [{1\over 2}], −z + [{3\over 2}] (vi) −x + 1, −y + 1, −z + 1 (vii) −x + 1, y − [{1\over 2}], −z + [{1\over 2}] (viii) −x + 1, −y + 1, −z.]

5. Database survey

Various transition-metal complexes containing a pyridyl­pyridazine unit in the ligands have been structurally characterized by X-ray crystallography: Fe (Futaki et al., 2025View full citation; Guo et al., 2021View full citation), Ru (De Munno et al., 1988View full citation; Xu et al., 2009View full citation), Pt (McCready & Puddephatt, 2015View full citation), Co, Ni, Zn (Savjani et al., 2015View full citation), Re (Sangilipandi et al., 2015View full citation; Mosberger et al., 2019View full citation; Schnierle et al., 2022View full citation). However, structural reports on iron complexes are rare (Futaki et al., 2025View full citation; Guo et al., 2021View full citation).

6. Synthesis and crystallization

A suspension of complex 1 (0.058 g, 0.12 mmol) and [Fe(PMe3)4] (0.016 g, 0.11 mmol) in tetrahydrofuran (THF) (10 mL) was stirred at room temperature under a nitro­gen atmosphere for 1 d. The resulting deep brown solution was concentrated to dryness under reduced pressure to afford a red–brown solid. The solid was dissolved in toluene, and hexane was layered on top of the solution. The mixture was cooled to 253 K, and the precipitated red–brown solid was removed by deca­ntation. The resulting blue–green solution was stored at 253 K to yield 2 as red–brown crystals (3.6 mg, 5%). The low yield is probably due to the high solubility of 2 in toluene and hexane. 1H NMR (600 MHz, C6D6): δ 9.83 (d, J = 6.2 Hz, 1H), 7.94 (m, 2H), 7.89 (d, J = 8.0 Hz, 1H), 7.55 (dd, J = 8.0, 0.4 Hz, 1H), 7.44 (td, J = 7.6, 0.4 Hz, 1H), 7.32 (m, 1H), 7.26 (dd, J = 8.6, 0.4 Hz, 1H), 7.21 (m, 1H), 7.15 (m, 1H), 6.97 (td, J = 8.6, 1.4 Hz, 1H), 6.80 (m, 1H), 6.52 (td, J = 6.6, 1.0 Hz, 1H), 1.05 (d, J = 7.6 Hz, 18H). 31P{1H} NMR (243 MHz, C6D6): δ 22.7. νCO/cm−1 (KBr): 1844. Analysis calculated for C28H31FeN3OP2S·0.9H2O: C; 56.84, H; 5.59, N; 7.10. Found: C, 56.52; H, 5.27; N, 7.59.

7. Refinement

Crystal data, data collection and structure refinement details are summarized in Table 3[link]. All non-hydrogen atoms were refined anisotropically. Hydrogen atoms were placed in calculated positions with C—H(aromatic) = 0.95 Å and C—H(meth­yl) = 0.98 Å, and refined using a riding model with Uiso(H) = 1.2Ueq(C) and 1.5Ueq(C), respectively.

Table 3
Experimental details

Crystal data
Chemical formula [Fe(C21H13N3S)(C3H9P)2(CO)]
Mr 575.41
Crystal system, space group Monoclinic, P21/c
Temperature (K) 90
a, b, c (Å) 13.4551 (3), 32.3786 (7), 13.5356 (3)
β (°) 109.700 (3)
V3) 5551.7 (2)
Z 8
Radiation type Mo Kα
μ (mm−1) 0.76
Crystal size (mm) 0.24 × 0.21 × 0.08
 
Data collection
Diffractometer ROD, Synergy Custom system, HyPix
Absorption correction Multi-scan (CrysAlis PRO; Rigaku OD, 2024View full citation)
Tmin, Tmax 0.878, 1.000
No. of measured, independent and observed [I > 2σ(I)] reflections 62645, 14433, 12163
Rint 0.033
(sin θ/λ)max−1) 0.725
 
Refinement
R[F2 > 2σ(F2)], wR(F2), S 0.031, 0.083, 1.04
No. of reflections 14433
No. of parameters 661
H-atom treatment H-atom parameters constrained
Δρmax, Δρmin (e Å−3) 0.52, −0.39
Computer programs: CrysAlis PRO (Rigaku OD, 2024View full citation), SHELXT2018/2 (Sheldrick, 2015aView full citation), SHELXL2019/3 (Sheldrick, 2015bView full citation) and OLEX2 (Dolomanov et al., 2009View full citation).

Supporting information


Computing details top

Carbonyl[3-(dibenzo[b,d]thiophen-4-yl)-6-(pyridin-2-yl-κN)pyridazine-κN1]bis(trimethylphosphane)iron(0) top
Crystal data top
[Fe(C21H13N3S)(C3H9P)2(CO)]F(000) = 2400
Mr = 575.41Dx = 1.377 Mg m3
Monoclinic, P21/cMo Kα radiation, λ = 0.71073 Å
a = 13.4551 (3) ÅCell parameters from 32963 reflections
b = 32.3786 (7) Åθ = 3.0–31.0°
c = 13.5356 (3) ŵ = 0.76 mm1
β = 109.700 (3)°T = 90 K
V = 5551.7 (2) Å3Block, dark red
Z = 80.24 × 0.21 × 0.08 mm
Data collection top
ROD, Synergy Custom system, HyPix
diffractometer
14433 independent reflections
Radiation source: Rotating-anode X-ray tube, Rigaku (Mo) X-ray Source12163 reflections with I > 2σ(I)
Mirror monochromatorRint = 0.033
Detector resolution: 10.0000 pixels mm-1θmax = 31.0°, θmin = 3.0°
ω scansh = 1718
Absorption correction: multi-scan
(CrysAlisPro; Rigaku OD, 2024)
k = 4345
Tmin = 0.878, Tmax = 1.000l = 1918
62645 measured reflections
Refinement top
Refinement on F2Primary atom site location: dual
Least-squares matrix: fullHydrogen site location: inferred from neighbouring sites
R[F2 > 2σ(F2)] = 0.031H-atom parameters constrained
wR(F2) = 0.083 w = 1/[σ2(Fo2) + (0.0401P)2 + 2.4796P]
where P = (Fo2 + 2Fc2)/3
S = 1.04(Δ/σ)max = 0.002
14433 reflectionsΔρmax = 0.52 e Å3
661 parametersΔρmin = 0.38 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
Fe10.38565 (2)0.62411 (2)0.32029 (2)0.01969 (5)
S10.65732 (3)0.81061 (2)0.34172 (3)0.02582 (8)
P10.27314 (3)0.67629 (2)0.29259 (3)0.02223 (8)
P20.38516 (3)0.60425 (2)0.47438 (3)0.02675 (9)
O10.21163 (11)0.56935 (5)0.21116 (13)0.0481 (4)
N10.50321 (9)0.69917 (4)0.40088 (10)0.0198 (2)
N20.50212 (9)0.66130 (4)0.35479 (10)0.0183 (2)
N30.48680 (10)0.58951 (4)0.28443 (10)0.0217 (3)
C10.65719 (12)0.86409 (5)0.36221 (13)0.0246 (3)
C20.69065 (14)0.89446 (5)0.30716 (15)0.0330 (4)
H20.7172150.8871730.2527890.040*
C30.68421 (14)0.93547 (6)0.33368 (17)0.0368 (4)
H30.7057470.9565440.2964160.044*
C40.64648 (13)0.94620 (5)0.41441 (16)0.0341 (4)
H40.6433070.9744550.4320180.041*
C50.61366 (13)0.91610 (5)0.46902 (14)0.0298 (4)
H50.5877320.9236260.5236840.036*
C60.61888 (12)0.87442 (5)0.44327 (13)0.0239 (3)
C70.60539 (11)0.80132 (5)0.44243 (12)0.0206 (3)
C80.58965 (11)0.83825 (5)0.49030 (12)0.0223 (3)
C90.54778 (13)0.83641 (5)0.57167 (13)0.0285 (3)
H90.5364000.8610840.6043260.034*
C100.52310 (14)0.79876 (6)0.60427 (13)0.0306 (4)
H100.4962560.7974870.6607450.037*
C110.53711 (12)0.76234 (5)0.55518 (12)0.0256 (3)
H110.5186230.7366830.5783130.031*
C120.57760 (11)0.76281 (5)0.47301 (11)0.0205 (3)
C130.58684 (11)0.72335 (4)0.42035 (11)0.0192 (3)
C140.67901 (11)0.71251 (5)0.39751 (12)0.0221 (3)
H140.7363220.7311760.4093160.026*
C150.68116 (11)0.67382 (5)0.35766 (12)0.0216 (3)
H150.7420540.6646460.3434800.026*
C160.59346 (11)0.64774 (4)0.33777 (11)0.0180 (3)
C170.58394 (11)0.60719 (5)0.29734 (11)0.0194 (3)
C180.66233 (12)0.58596 (5)0.26952 (13)0.0239 (3)
H180.7272010.5992970.2763430.029*
C190.64543 (13)0.54640 (5)0.23288 (13)0.0277 (3)
H190.6975840.5320250.2134560.033*
C200.54883 (14)0.52740 (5)0.22459 (14)0.0302 (3)
H200.5358200.4995790.2015720.036*
C210.47386 (13)0.54929 (5)0.24990 (14)0.0290 (3)
H210.4090640.5359200.2432310.035*
C220.28045 (13)0.59203 (5)0.25351 (15)0.0304 (4)
C230.13493 (13)0.66352 (6)0.22311 (16)0.0362 (4)
H23A0.1276040.6522930.1537670.054*
H23B0.0917540.6884970.2149170.054*
H23C0.1112480.6429140.2633570.054*
C240.25876 (14)0.70886 (6)0.39819 (14)0.0318 (4)
H24A0.2351970.6918530.4459790.048*
H24B0.2065430.7305320.3678290.048*
H24C0.3268730.7215460.4370450.048*
C250.29402 (13)0.71554 (5)0.20477 (13)0.0277 (3)
H25A0.3607760.7299050.2397200.042*
H25B0.2357890.7354550.1868810.042*
H25C0.2967060.7023330.1405760.042*
C260.25739 (16)0.59587 (7)0.49069 (17)0.0423 (5)
H26A0.2189560.6220900.4814030.063*
H26B0.2682610.5850570.5611850.063*
H26C0.2163880.5759500.4382220.063*
C270.44892 (18)0.55442 (6)0.51818 (19)0.0483 (5)
H27A0.4131180.5329450.4677190.072*
H27B0.4446290.5476850.5872070.072*
H27C0.5231740.5559530.5230610.072*
C280.45209 (15)0.63728 (7)0.58702 (14)0.0386 (4)
H28A0.5248190.6422920.5898250.058*
H28B0.4526890.6235600.6517600.058*
H28C0.4145780.6636560.5797680.058*
Fe21.06717 (2)0.59728 (2)0.73660 (2)0.01677 (5)
S20.86582 (3)0.79761 (2)0.67762 (3)0.01875 (7)
P31.20661 (3)0.63524 (2)0.82008 (3)0.02169 (8)
P41.05319 (3)0.56362 (2)0.87131 (3)0.02180 (8)
O21.21287 (10)0.53829 (4)0.69799 (10)0.0350 (3)
N40.98932 (9)0.67679 (4)0.78335 (9)0.0182 (2)
N50.96964 (9)0.64174 (4)0.72141 (9)0.0171 (2)
N60.94560 (10)0.57373 (4)0.62879 (9)0.0210 (2)
C290.88599 (11)0.84938 (4)0.71594 (12)0.0184 (3)
C300.86403 (11)0.88323 (5)0.64814 (13)0.0233 (3)
H300.8336570.8796850.5743550.028*
C310.88807 (13)0.92220 (5)0.69217 (14)0.0276 (3)
H310.8744720.9457380.6477040.033*
C320.93179 (13)0.92747 (5)0.80038 (15)0.0287 (3)
H320.9469090.9545600.8284250.034*
C330.95368 (12)0.89386 (5)0.86800 (13)0.0239 (3)
H330.9834750.8977410.9417170.029*
C340.93101 (11)0.85410 (4)0.82548 (12)0.0189 (3)
C350.92194 (10)0.78126 (4)0.80860 (11)0.0171 (3)
C360.95100 (11)0.81457 (4)0.87915 (11)0.0178 (3)
C370.99331 (12)0.80680 (5)0.98707 (12)0.0226 (3)
H371.0114120.8290111.0357560.027*
C381.00841 (13)0.76631 (5)1.02188 (12)0.0253 (3)
H381.0357450.7607791.0950410.030*
C390.98387 (12)0.73344 (5)0.95052 (12)0.0235 (3)
H390.9969670.7059410.9761250.028*
C400.94065 (11)0.74017 (4)0.84278 (11)0.0186 (3)
C410.91399 (11)0.70474 (4)0.76852 (11)0.0186 (3)
C420.81208 (11)0.70174 (5)0.69147 (12)0.0210 (3)
H420.7622540.7235790.6795500.025*
C430.78924 (12)0.66576 (5)0.63519 (11)0.0210 (3)
H430.7211680.6615030.5847420.025*
C440.86699 (11)0.63537 (4)0.65263 (11)0.0189 (3)
C450.85334 (12)0.59607 (4)0.60339 (11)0.0210 (3)
C460.75592 (14)0.57940 (5)0.53921 (13)0.0284 (3)
H460.6931860.5952980.5238720.034*
C470.75179 (15)0.54039 (5)0.49910 (13)0.0329 (4)
H470.6865070.5286140.4572330.039*
C480.84680 (15)0.51813 (5)0.52147 (13)0.0316 (4)
H480.8467180.4913300.4928990.038*
C490.93895 (14)0.53533 (5)0.58444 (12)0.0266 (3)
H491.0021090.5198050.5983220.032*
C501.15461 (13)0.56265 (5)0.71191 (12)0.0239 (3)
C511.22180 (15)0.68063 (6)0.74707 (16)0.0360 (4)
H51A1.2256190.6720820.6789870.054*
H51B1.2867820.6952250.7868740.054*
H51C1.1611710.6990300.7360380.054*
C521.22545 (14)0.65821 (6)0.94861 (13)0.0319 (4)
H52A1.1628220.6743450.9454120.048*
H52B1.2874210.6763150.9682230.048*
H52C1.2361910.6362591.0010440.048*
C531.33634 (13)0.61128 (6)0.84742 (16)0.0352 (4)
H53A1.3428980.5876410.8944280.053*
H53B1.3916030.6315080.8809190.053*
H53C1.3439670.6018470.7815480.053*
C540.96084 (15)0.52024 (5)0.83666 (14)0.0322 (4)
H54A0.8898500.5304720.7977360.048*
H54B0.9602130.5063530.9007730.048*
H54C0.9829700.5006610.7929010.048*
C551.17149 (14)0.53884 (6)0.96047 (14)0.0340 (4)
H55A1.2028240.5210500.9202640.051*
H55B1.1525000.5221391.0118150.051*
H55C1.2225940.5600410.9971530.051*
C561.00203 (15)0.59247 (6)0.95985 (14)0.0337 (4)
H56A1.0460680.6168950.9859420.051*
H56B1.0032600.5748511.0191240.051*
H56C0.9293240.6011240.9219550.051*
Atomic displacement parameters (Å2) top
U11U22U33U12U13U23
Fe10.01493 (10)0.02206 (11)0.02349 (11)0.00260 (7)0.00833 (8)0.00272 (8)
S10.0319 (2)0.02150 (18)0.02929 (19)0.00082 (15)0.01718 (17)0.00173 (15)
P10.01522 (17)0.0289 (2)0.02408 (19)0.00079 (14)0.00856 (15)0.00361 (15)
P20.02358 (19)0.0303 (2)0.0277 (2)0.00653 (16)0.01035 (17)0.00340 (17)
O10.0299 (7)0.0471 (8)0.0618 (10)0.0133 (6)0.0081 (7)0.0225 (7)
N10.0170 (6)0.0216 (6)0.0219 (6)0.0009 (4)0.0077 (5)0.0015 (5)
N20.0164 (5)0.0190 (6)0.0207 (6)0.0004 (4)0.0080 (5)0.0000 (5)
N30.0206 (6)0.0210 (6)0.0248 (6)0.0009 (5)0.0092 (5)0.0003 (5)
C10.0201 (7)0.0223 (7)0.0281 (8)0.0001 (6)0.0038 (6)0.0017 (6)
C20.0310 (9)0.0289 (8)0.0408 (10)0.0016 (7)0.0145 (8)0.0022 (7)
C30.0304 (9)0.0254 (8)0.0521 (11)0.0039 (7)0.0103 (8)0.0042 (8)
C40.0243 (8)0.0220 (8)0.0467 (10)0.0007 (6)0.0001 (8)0.0057 (7)
C50.0225 (7)0.0262 (8)0.0339 (9)0.0006 (6)0.0007 (7)0.0079 (7)
C60.0158 (6)0.0250 (7)0.0251 (7)0.0005 (5)0.0005 (6)0.0051 (6)
C70.0147 (6)0.0261 (7)0.0197 (7)0.0007 (5)0.0042 (5)0.0037 (6)
C80.0165 (6)0.0249 (7)0.0216 (7)0.0005 (5)0.0012 (6)0.0060 (6)
C90.0275 (8)0.0317 (8)0.0261 (8)0.0016 (6)0.0087 (7)0.0127 (7)
C100.0305 (8)0.0396 (9)0.0246 (8)0.0060 (7)0.0133 (7)0.0093 (7)
C110.0235 (7)0.0314 (8)0.0222 (7)0.0048 (6)0.0083 (6)0.0047 (6)
C120.0154 (6)0.0251 (7)0.0197 (6)0.0007 (5)0.0045 (5)0.0030 (6)
C130.0173 (6)0.0211 (7)0.0189 (6)0.0008 (5)0.0058 (5)0.0010 (5)
C140.0163 (6)0.0223 (7)0.0281 (7)0.0023 (5)0.0082 (6)0.0013 (6)
C150.0154 (6)0.0235 (7)0.0280 (7)0.0023 (5)0.0101 (6)0.0027 (6)
C160.0149 (6)0.0209 (7)0.0191 (6)0.0021 (5)0.0068 (5)0.0035 (5)
C170.0185 (6)0.0200 (7)0.0202 (7)0.0017 (5)0.0074 (6)0.0031 (5)
C180.0216 (7)0.0228 (7)0.0293 (8)0.0040 (6)0.0112 (6)0.0034 (6)
C190.0290 (8)0.0255 (8)0.0310 (8)0.0070 (6)0.0131 (7)0.0001 (6)
C200.0332 (9)0.0218 (8)0.0358 (9)0.0002 (6)0.0121 (7)0.0050 (7)
C210.0286 (8)0.0224 (8)0.0371 (9)0.0044 (6)0.0126 (7)0.0048 (7)
C220.0233 (8)0.0328 (9)0.0357 (9)0.0017 (6)0.0107 (7)0.0079 (7)
C230.0161 (7)0.0457 (11)0.0442 (10)0.0005 (7)0.0069 (7)0.0062 (8)
C240.0289 (8)0.0390 (10)0.0320 (9)0.0040 (7)0.0164 (7)0.0068 (7)
C250.0270 (8)0.0296 (8)0.0266 (8)0.0050 (6)0.0092 (7)0.0002 (6)
C260.0353 (10)0.0569 (13)0.0407 (10)0.0166 (9)0.0206 (9)0.0025 (9)
C270.0514 (12)0.0376 (11)0.0561 (13)0.0040 (9)0.0186 (11)0.0183 (10)
C280.0373 (10)0.0510 (11)0.0256 (8)0.0112 (8)0.0081 (8)0.0012 (8)
Fe20.02222 (10)0.01360 (10)0.01504 (9)0.00217 (7)0.00699 (8)0.00007 (7)
S20.01849 (16)0.01793 (16)0.01829 (15)0.00061 (12)0.00416 (13)0.00110 (13)
P30.02033 (18)0.02093 (18)0.02220 (18)0.00205 (14)0.00503 (15)0.00170 (14)
P40.02679 (19)0.02252 (19)0.01832 (17)0.00484 (15)0.01053 (15)0.00397 (14)
O20.0410 (7)0.0282 (6)0.0391 (7)0.0111 (5)0.0177 (6)0.0055 (5)
N40.0203 (6)0.0151 (5)0.0181 (5)0.0013 (4)0.0049 (5)0.0019 (4)
N50.0208 (6)0.0141 (5)0.0152 (5)0.0003 (4)0.0045 (5)0.0007 (4)
N60.0314 (7)0.0159 (6)0.0159 (5)0.0019 (5)0.0084 (5)0.0018 (4)
C290.0134 (6)0.0176 (6)0.0248 (7)0.0004 (5)0.0074 (6)0.0010 (5)
C300.0179 (7)0.0235 (7)0.0297 (8)0.0002 (5)0.0094 (6)0.0032 (6)
C310.0258 (8)0.0204 (7)0.0396 (9)0.0014 (6)0.0149 (7)0.0050 (7)
C320.0285 (8)0.0179 (7)0.0431 (10)0.0048 (6)0.0165 (7)0.0052 (7)
C330.0218 (7)0.0217 (7)0.0305 (8)0.0037 (6)0.0116 (6)0.0070 (6)
C340.0137 (6)0.0193 (7)0.0259 (7)0.0000 (5)0.0094 (6)0.0029 (6)
C350.0139 (6)0.0194 (7)0.0176 (6)0.0017 (5)0.0049 (5)0.0009 (5)
C360.0134 (6)0.0194 (7)0.0215 (7)0.0014 (5)0.0071 (5)0.0038 (5)
C370.0217 (7)0.0249 (7)0.0212 (7)0.0011 (6)0.0072 (6)0.0064 (6)
C380.0290 (8)0.0283 (8)0.0170 (7)0.0040 (6)0.0057 (6)0.0008 (6)
C390.0257 (7)0.0219 (7)0.0212 (7)0.0047 (6)0.0058 (6)0.0012 (6)
C400.0163 (6)0.0187 (7)0.0203 (6)0.0026 (5)0.0056 (5)0.0024 (5)
C410.0205 (7)0.0164 (6)0.0189 (6)0.0008 (5)0.0067 (6)0.0009 (5)
C420.0186 (7)0.0193 (7)0.0236 (7)0.0026 (5)0.0053 (6)0.0023 (6)
C430.0192 (7)0.0215 (7)0.0190 (6)0.0019 (5)0.0021 (6)0.0029 (5)
C440.0223 (7)0.0172 (7)0.0159 (6)0.0018 (5)0.0046 (6)0.0015 (5)
C450.0271 (7)0.0191 (7)0.0155 (6)0.0032 (5)0.0052 (6)0.0010 (5)
C460.0314 (8)0.0254 (8)0.0223 (7)0.0061 (6)0.0011 (7)0.0001 (6)
C470.0406 (10)0.0274 (8)0.0247 (8)0.0136 (7)0.0032 (7)0.0032 (6)
C480.0516 (11)0.0201 (7)0.0234 (7)0.0100 (7)0.0130 (8)0.0061 (6)
C490.0425 (9)0.0177 (7)0.0221 (7)0.0029 (6)0.0143 (7)0.0026 (6)
C500.0320 (8)0.0200 (7)0.0209 (7)0.0008 (6)0.0107 (6)0.0002 (6)
C510.0334 (9)0.0299 (9)0.0422 (10)0.0084 (7)0.0093 (8)0.0046 (8)
C520.0268 (8)0.0351 (9)0.0280 (8)0.0031 (7)0.0015 (7)0.0101 (7)
C530.0226 (8)0.0390 (10)0.0423 (10)0.0048 (7)0.0085 (7)0.0075 (8)
C540.0405 (10)0.0286 (8)0.0325 (9)0.0024 (7)0.0188 (8)0.0058 (7)
C550.0349 (9)0.0385 (10)0.0288 (8)0.0096 (7)0.0110 (7)0.0135 (7)
C560.0387 (9)0.0427 (10)0.0244 (8)0.0059 (8)0.0168 (7)0.0033 (7)
Geometric parameters (Å, º) top
Fe1—P12.2144 (4)Fe2—P32.2087 (4)
Fe1—P22.1847 (5)Fe2—P42.1862 (4)
Fe1—N21.9054 (12)Fe2—N51.9117 (12)
Fe1—N31.9464 (13)Fe2—N61.9434 (13)
Fe1—C221.7426 (17)Fe2—C501.7371 (16)
S1—C11.7538 (16)S2—C291.7486 (15)
S1—C71.7547 (16)S2—C351.7582 (14)
P1—C231.8261 (17)P3—C511.8207 (18)
P1—C241.8382 (17)P3—C521.8294 (17)
P1—C251.8254 (17)P3—C531.8304 (17)
P2—C261.8258 (19)P4—C541.8284 (18)
P2—C271.830 (2)P4—C551.8271 (17)
P2—C281.8312 (19)P4—C561.8272 (17)
O1—C221.169 (2)O2—C501.1713 (19)
N1—N21.3736 (17)N4—N51.3826 (16)
N1—C131.3224 (19)N4—C411.3228 (18)
N2—C161.3954 (18)N5—C441.3964 (18)
N3—C171.3830 (19)N6—C451.377 (2)
N3—C211.375 (2)N6—C491.3704 (19)
C1—C21.397 (2)C29—C301.396 (2)
C1—C61.401 (2)C29—C341.408 (2)
C2—H20.9500C30—H300.9500
C2—C31.386 (3)C30—C311.386 (2)
C3—H30.9500C31—H310.9500
C3—C41.395 (3)C31—C321.393 (3)
C4—H40.9500C32—H320.9500
C4—C51.382 (3)C32—C331.388 (2)
C5—H50.9500C33—H330.9500
C5—C61.401 (2)C33—C341.401 (2)
C6—C81.449 (2)C34—C361.451 (2)
C7—C81.410 (2)C35—C361.406 (2)
C7—C121.404 (2)C35—C401.403 (2)
C8—C91.397 (2)C36—C371.400 (2)
C9—H90.9500C37—H370.9500
C9—C101.375 (3)C37—C381.385 (2)
C10—H100.9500C38—H380.9500
C10—C111.397 (2)C38—C391.400 (2)
C11—H110.9500C39—H390.9500
C11—C121.394 (2)C39—C401.393 (2)
C12—C131.489 (2)C40—C411.487 (2)
C13—C141.420 (2)C41—C421.419 (2)
C14—H140.9500C42—H420.9500
C14—C151.368 (2)C42—C431.369 (2)
C15—H150.9500C43—H430.9500
C15—C161.401 (2)C43—C441.397 (2)
C16—C171.411 (2)C44—C451.419 (2)
C17—C181.412 (2)C45—C461.413 (2)
C18—H180.9500C46—H460.9500
C18—C191.365 (2)C46—C471.369 (2)
C19—H190.9500C47—H470.9500
C19—C201.408 (2)C47—C481.409 (3)
C20—H200.9500C48—H480.9500
C20—C211.368 (2)C48—C491.364 (2)
C21—H210.9500C49—H490.9500
C23—H23A0.9800C51—H51A0.9800
C23—H23B0.9800C51—H51B0.9800
C23—H23C0.9800C51—H51C0.9800
C24—H24A0.9800C52—H52A0.9800
C24—H24B0.9800C52—H52B0.9800
C24—H24C0.9800C52—H52C0.9800
C25—H25A0.9800C53—H53A0.9800
C25—H25B0.9800C53—H53B0.9800
C25—H25C0.9800C53—H53C0.9800
C26—H26A0.9800C54—H54A0.9800
C26—H26B0.9800C54—H54B0.9800
C26—H26C0.9800C54—H54C0.9800
C27—H27A0.9800C55—H55A0.9800
C27—H27B0.9800C55—H55B0.9800
C27—H27C0.9800C55—H55C0.9800
C28—H28A0.9800C56—H56A0.9800
C28—H28B0.9800C56—H56B0.9800
C28—H28C0.9800C56—H56C0.9800
H9···C17i2.676H23C···C34iii2.824
H15···C34ii2.704H25C···C52v2.834
H2···C43ii2.730H49vi···H32iii2.336
C8···H53Biii2.755C6···H302.841
H15···C36ii2.770H23B···S2iii2.943
S1···C42ii3.389H5···C19i2.843
O2···H48iv2.616H19···O2iv2.664
H18···C32ii2.798
P2—Fe1—P199.457 (18)P4—Fe2—P398.499 (17)
N2—Fe1—P191.04 (4)N5—Fe2—P394.01 (4)
N2—Fe1—P2102.65 (4)N5—Fe2—P4102.48 (4)
N2—Fe1—N380.70 (5)N5—Fe2—N680.86 (5)
N3—Fe1—P1153.19 (4)N6—Fe2—P3163.19 (4)
N3—Fe1—P2107.22 (4)N6—Fe2—P498.24 (4)
C22—Fe1—P188.71 (6)C50—Fe2—P386.79 (5)
C22—Fe1—P293.24 (6)C50—Fe2—P495.33 (5)
C22—Fe1—N2163.93 (7)C50—Fe2—N5161.83 (6)
C22—Fe1—N392.38 (7)C50—Fe2—N693.19 (7)
C1—S1—C791.40 (8)C29—S2—C3591.07 (7)
C23—P1—Fe1115.71 (7)C51—P3—Fe2113.76 (6)
C23—P1—C24100.05 (8)C51—P3—C52100.55 (9)
C24—P1—Fe1123.45 (6)C51—P3—C53100.26 (9)
C25—P1—Fe1113.27 (5)C52—P3—Fe2122.29 (6)
C25—P1—C23100.13 (9)C52—P3—C5399.38 (8)
C25—P1—C24100.75 (8)C53—P3—Fe2117.08 (6)
C26—P2—Fe1117.72 (7)C54—P4—Fe2114.27 (6)
C26—P2—C27100.80 (10)C55—P4—Fe2117.97 (6)
C26—P2—C28101.83 (10)C55—P4—C54101.40 (9)
C27—P2—Fe1114.64 (8)C55—P4—C56103.19 (9)
C27—P2—C28101.53 (11)C56—P4—Fe2116.71 (6)
C28—P2—Fe1117.66 (6)C56—P4—C54100.79 (9)
C13—N1—N2119.81 (12)C41—N4—N5119.30 (12)
N1—N2—Fe1123.88 (9)N4—N5—Fe2124.66 (9)
N1—N2—C16118.74 (12)N4—N5—C44118.02 (11)
C16—N2—Fe1117.26 (10)C44—N5—Fe2116.70 (9)
C17—N3—Fe1116.15 (10)C45—N6—Fe2116.19 (10)
C21—N3—Fe1127.66 (11)C49—N6—Fe2126.80 (11)
C21—N3—C17116.18 (13)C49—N6—C45116.56 (13)
C2—C1—S1126.37 (14)C30—C29—S2125.48 (12)
C2—C1—C6121.30 (15)C30—C29—C34121.85 (14)
C6—C1—S1112.33 (12)C34—C29—S2112.64 (11)
C1—C2—H2120.8C29—C30—H30121.1
C3—C2—C1118.48 (18)C31—C30—C29117.71 (15)
C3—C2—H2120.8C31—C30—H30121.1
C2—C3—H3119.6C30—C31—H31119.4
C2—C3—C4120.83 (17)C30—C31—C32121.23 (15)
C4—C3—H3119.6C32—C31—H31119.4
C3—C4—H4119.7C31—C32—H32119.4
C5—C4—C3120.63 (16)C33—C32—C31121.17 (15)
C5—C4—H4119.7C33—C32—H32119.4
C4—C5—H5120.2C32—C33—H33120.6
C4—C5—C6119.60 (17)C32—C33—C34118.76 (15)
C6—C5—H5120.2C34—C33—H33120.6
C1—C6—C5119.16 (16)C29—C34—C36111.88 (12)
C1—C6—C8112.15 (14)C33—C34—C29119.27 (14)
C5—C6—C8128.69 (16)C33—C34—C36128.81 (14)
C8—C7—S1111.88 (12)C36—C35—S2112.35 (11)
C12—C7—S1126.64 (11)C40—C35—S2125.90 (11)
C12—C7—C8121.45 (14)C40—C35—C36121.71 (13)
C7—C8—C6112.24 (14)C35—C36—C34111.99 (13)
C9—C8—C6128.45 (14)C37—C36—C34128.48 (13)
C9—C8—C7119.29 (15)C37—C36—C35119.53 (13)
C8—C9—H9120.1C36—C37—H37120.4
C10—C9—C8119.73 (15)C38—C37—C36119.11 (14)
C10—C9—H9120.1C38—C37—H37120.4
C9—C10—H10119.7C37—C38—H38119.6
C9—C10—C11120.65 (15)C37—C38—C39120.78 (14)
C11—C10—H10119.7C39—C38—H38119.6
C10—C11—H11119.3C38—C39—H39119.3
C12—C11—C10121.47 (16)C40—C39—C38121.43 (14)
C12—C11—H11119.3C40—C39—H39119.3
C7—C12—C13123.21 (13)C35—C40—C41122.20 (13)
C11—C12—C7117.37 (14)C39—C40—C35117.30 (13)
C11—C12—C13119.40 (14)C39—C40—C41120.49 (13)
N1—C13—C12113.63 (12)N4—C41—C40115.29 (12)
N1—C13—C14123.87 (14)N4—C41—C42124.46 (13)
C14—C13—C12122.46 (13)C42—C41—C40120.19 (13)
C13—C14—H14121.7C41—C42—H42121.7
C15—C14—C13116.64 (13)C43—C42—C41116.58 (13)
C15—C14—H14121.7C43—C42—H42121.7
C14—C15—H15120.0C42—C43—H43120.3
C14—C15—C16119.95 (13)C42—C43—C44119.37 (13)
C16—C15—H15120.0C44—C43—H43120.3
N2—C16—C15120.66 (13)N5—C44—C43121.65 (13)
N2—C16—C17112.76 (12)N5—C44—C45112.81 (13)
C15—C16—C17126.55 (13)C43—C44—C45125.53 (14)
N3—C17—C16113.11 (12)N6—C45—C44113.00 (13)
N3—C17—C18121.58 (14)N6—C45—C46121.63 (14)
C16—C17—C18125.30 (14)C46—C45—C44125.28 (15)
C17—C18—H18119.8C45—C46—H46119.9
C19—C18—C17120.39 (15)C47—C46—C45120.11 (16)
C19—C18—H18119.8C47—C46—H46119.9
C18—C19—H19120.8C46—C47—H47120.8
C18—C19—C20118.38 (15)C46—C47—C48118.31 (16)
C20—C19—H19120.8C48—C47—H47120.8
C19—C20—H20120.2C47—C48—H48120.2
C21—C20—C19119.53 (15)C49—C48—C47119.56 (15)
C21—C20—H20120.2C49—C48—H48120.2
N3—C21—H21118.1N6—C49—H49118.1
C20—C21—N3123.81 (15)C48—C49—N6123.73 (16)
C20—C21—H21118.1C48—C49—H49118.1
O1—C22—Fe1177.53 (18)O2—C50—Fe2177.43 (14)
P1—C23—H23A109.5P3—C51—H51A109.5
P1—C23—H23B109.5P3—C51—H51B109.5
P1—C23—H23C109.5P3—C51—H51C109.5
H23A—C23—H23B109.5H51A—C51—H51B109.5
H23A—C23—H23C109.5H51A—C51—H51C109.5
H23B—C23—H23C109.5H51B—C51—H51C109.5
P1—C24—H24A109.5P3—C52—H52A109.5
P1—C24—H24B109.5P3—C52—H52B109.5
P1—C24—H24C109.5P3—C52—H52C109.5
H24A—C24—H24B109.5H52A—C52—H52B109.5
H24A—C24—H24C109.5H52A—C52—H52C109.5
H24B—C24—H24C109.5H52B—C52—H52C109.5
P1—C25—H25A109.5P3—C53—H53A109.5
P1—C25—H25B109.5P3—C53—H53B109.5
P1—C25—H25C109.5P3—C53—H53C109.5
H25A—C25—H25B109.5H53A—C53—H53B109.5
H25A—C25—H25C109.5H53A—C53—H53C109.5
H25B—C25—H25C109.5H53B—C53—H53C109.5
P2—C26—H26A109.5P4—C54—H54A109.5
P2—C26—H26B109.5P4—C54—H54B109.5
P2—C26—H26C109.5P4—C54—H54C109.5
H26A—C26—H26B109.5H54A—C54—H54B109.5
H26A—C26—H26C109.5H54A—C54—H54C109.5
H26B—C26—H26C109.5H54B—C54—H54C109.5
P2—C27—H27A109.5P4—C55—H55A109.5
P2—C27—H27B109.5P4—C55—H55B109.5
P2—C27—H27C109.5P4—C55—H55C109.5
H27A—C27—H27B109.5H55A—C55—H55B109.5
H27A—C27—H27C109.5H55A—C55—H55C109.5
H27B—C27—H27C109.5H55B—C55—H55C109.5
P2—C28—H28A109.5P4—C56—H56A109.5
P2—C28—H28B109.5P4—C56—H56B109.5
P2—C28—H28C109.5P4—C56—H56C109.5
H28A—C28—H28B109.5H56A—C56—H56B109.5
H28A—C28—H28C109.5H56A—C56—H56C109.5
H28B—C28—H28C109.5H56B—C56—H56C109.5
Fe1—N2—C16—C15177.72 (11)Fe2—N5—C44—C43179.81 (11)
Fe1—N2—C16—C170.56 (16)Fe2—N5—C44—C451.00 (16)
Fe1—N3—C17—C161.61 (16)Fe2—N6—C45—C447.11 (16)
Fe1—N3—C17—C18177.05 (11)Fe2—N6—C45—C46169.65 (12)
Fe1—N3—C21—C20178.79 (14)Fe2—N6—C49—C48169.22 (13)
S1—C1—C2—C3179.57 (14)S2—C29—C30—C31178.05 (12)
S1—C1—C6—C5179.88 (12)S2—C29—C34—C33178.83 (11)
S1—C1—C6—C80.40 (16)S2—C29—C34—C360.92 (15)
S1—C7—C8—C60.83 (16)S2—C35—C36—C342.24 (15)
S1—C7—C8—C9179.46 (12)S2—C35—C36—C37177.62 (11)
S1—C7—C12—C11179.76 (12)S2—C35—C40—C39178.63 (11)
S1—C7—C12—C131.4 (2)S2—C35—C40—C410.1 (2)
N1—N2—C16—C156.2 (2)N4—N5—C44—C438.8 (2)
N1—N2—C16—C17175.51 (12)N4—N5—C44—C45172.39 (12)
N1—C13—C14—C153.2 (2)N4—C41—C42—C435.3 (2)
N2—N1—C13—C12178.43 (12)N5—N4—C41—C40176.74 (12)
N2—N1—C13—C140.8 (2)N5—N4—C41—C420.6 (2)
N2—C16—C17—N30.68 (18)N5—C44—C45—N63.89 (18)
N2—C16—C17—C18177.92 (14)N5—C44—C45—C46172.73 (14)
N3—C17—C18—C192.7 (2)N6—C45—C46—C471.1 (2)
C1—S1—C7—C80.51 (12)C29—S2—C35—C362.34 (11)
C1—S1—C7—C12177.29 (14)C29—S2—C35—C40175.61 (13)
C1—C2—C3—C40.8 (3)C29—C30—C31—C320.5 (2)
C1—C6—C8—C70.79 (18)C29—C34—C36—C350.85 (17)
C1—C6—C8—C9179.26 (15)C29—C34—C36—C37178.99 (14)
C2—C1—C6—C50.3 (2)C30—C29—C34—C330.6 (2)
C2—C1—C6—C8179.40 (15)C30—C29—C34—C36177.34 (13)
C2—C3—C4—C50.7 (3)C30—C31—C32—C330.5 (2)
C3—C4—C5—C60.3 (2)C31—C32—C33—C340.0 (2)
C4—C5—C6—C10.1 (2)C32—C33—C34—C290.6 (2)
C4—C5—C6—C8179.53 (15)C32—C33—C34—C36176.94 (14)
C5—C6—C8—C7179.52 (15)C33—C34—C36—C35176.81 (14)
C5—C6—C8—C91.0 (3)C33—C34—C36—C373.3 (2)
C6—C1—C2—C30.7 (2)C34—C29—C30—C310.0 (2)
C6—C8—C9—C10178.74 (15)C34—C36—C37—C38178.36 (14)
C7—S1—C1—C2179.85 (15)C35—S2—C29—C30176.34 (13)
C7—S1—C1—C60.06 (12)C35—S2—C29—C341.85 (11)
C7—C8—C9—C100.4 (2)C35—C36—C37—C381.8 (2)
C7—C12—C13—N1134.90 (15)C35—C40—C41—N4132.23 (14)
C7—C12—C13—C1447.4 (2)C35—C40—C41—C4250.3 (2)
C8—C7—C12—C112.2 (2)C36—C35—C40—C393.6 (2)
C8—C7—C12—C13176.22 (13)C36—C35—C40—C41177.64 (13)
C8—C9—C10—C111.5 (3)C36—C37—C38—C391.3 (2)
C9—C10—C11—C120.9 (3)C37—C38—C39—C402.0 (2)
C10—C11—C12—C71.0 (2)C38—C39—C40—C350.5 (2)
C10—C11—C12—C13177.47 (14)C38—C39—C40—C41179.24 (14)
C11—C12—C13—N143.44 (19)C39—C40—C41—N449.0 (2)
C11—C12—C13—C14134.22 (16)C39—C40—C41—C42128.39 (16)
C12—C7—C8—C6177.10 (13)C40—C35—C36—C34175.81 (13)
C12—C7—C8—C91.5 (2)C40—C35—C36—C374.3 (2)
C12—C13—C14—C15174.25 (14)C40—C41—C42—C43171.86 (14)
C13—N1—N2—Fe1178.75 (10)C41—N4—N5—Fe2177.03 (10)
C13—N1—N2—C165.46 (19)C41—N4—N5—C446.40 (19)
C13—C14—C15—C162.3 (2)C41—C42—C43—C442.8 (2)
C14—C15—C16—N22.2 (2)C42—C43—C44—N54.1 (2)
C14—C15—C16—C17179.76 (15)C42—C43—C44—C45177.30 (14)
C15—C16—C17—N3178.83 (14)C43—C44—C45—N6174.86 (14)
C15—C16—C17—C180.2 (2)C43—C44—C45—C468.5 (2)
C16—C17—C18—C19178.76 (15)C44—C45—C46—C47177.45 (15)
C17—N3—C21—C202.7 (2)C45—N6—C49—C482.7 (2)
C17—C18—C19—C200.6 (2)C45—C46—C47—C481.5 (3)
C18—C19—C20—C212.1 (3)C46—C47—C48—C492.0 (3)
C19—C20—C21—N30.5 (3)C47—C48—C49—N60.2 (3)
C21—N3—C17—C16177.08 (14)C49—N6—C45—C44179.90 (13)
C21—N3—C17—C184.3 (2)C49—N6—C45—C463.1 (2)
Symmetry codes: (i) x, y+3/2, z+1/2; (ii) x, y+3/2, z1/2; (iii) x1, y+3/2, z1/2; (iv) x+2, y+1, z+1; (v) x1, y, z1; (vi) x+1, y+1, z+1.
Structural indices (τ) and geometric parameters (Å, °) for experimental (1, 2A in 2, 2B in 2) and computational (2, 3, 4, 5) results top
1a2Ab2Bb2c3c4c5c
τ0.6490.1790.0230.0170.0450.2930.759
Fe—N(pyridazine)1.9487 (14)1.9054 (12)1.9117 (12)1.9141.9091.8921.927
Fe—N(pyridine)1.9622 (14)1.9464 (13)1.9434 (13)1.9711.9711.9661.987
N—Fe—N80.27 (6)80.70 (5)80.86 (5)80.7580.6580.8680.31
Interplanar angled3.94 (7)46.79 (4)52.56 (4)55.79
Interplanar anglee4.02 (9)3.03 (8)9.63 (8)0.571.180.350
Notes: (a) Futaki et al. (2025); (b) experimental data; (c) data from DFT calculations; (d) interplanar angles were calculated as the dihedral angle between the least-squares planes of the dibenzothiophene and pyridazine moieties; (e) interplanar angles were calculated as the dihedral angle between the least-squares planes of the pyridazine and pyridine moieties.
 

Funding information

This work was supported by JSPS KAKENHI grant No. JP23K04895.

References

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