metal-organic compounds
trans-Bis[1,2-bis(dimethylphosphino)ethane]bromidonitrosyltungsten(0)
aAnorganisch-Chemisches Institut, Universität Zürich, Winterthurerstrasse 190, CH-8057 Zürich, Switzerland
*Correspondence e-mail: oblacque@aci.uzh.ch
The 6H16P2)2], reveals a distorted octahedral geometry around the W centre. The W atom lies on a special position at an inversion centre (the Br and NO ligands are equally disordered). The bis(dimethylphosphino)ethane ligand is also severely disordered (site occupancy factors 0.52 and 0.48). This is the first structure of a tungsten species with nitrosyl and bromide ligands.
of the title compound, [WBr(NO)(CRelated literature
For related nitrosyltetrakis(trimethylphosphine)tungsten complexes, see: Chen et al. (2005). For bis[1,2-bis(dimethylphosphino)ethane]bromidotungsten complexes, see: Manna et al. (1992); Cotton et al. (1989). For carbonylphosphine tungsten complexes, see: Drew et al. (1982); Cotton & Meadows (1984). For synthesis of the precursors of the title compound, see: Johnson (1967); Berg & Dehnicke (1985). For the Cambridge Structural Database (Release 2006, Version 5.28), see Allen (2002).
Experimental
Crystal data
|
Refinement
|
Data collection: IPDS Software (Stoe & Cie, 1999); cell IPDS Software; data reduction: X-RED in IPDS Software; program(s) used to solve structure: SHELXS97 (Sheldrick, 1997); program(s) used to refine structure: SHELXL97 (Sheldrick, 1997); molecular graphics: ORTEP-3 for Windows (Farrugia, 1997); software used to prepare material for publication: WinGX (Farrugia, 1999) and SHELXL97.
Supporting information
https://doi.org/10.1107/S1600536807067189/ya2063sup1.cif
contains datablocks global, I. DOI:Structure factors: contains datablock I. DOI: https://doi.org/10.1107/S1600536807067189/ya2063Isup2.hkl
[W(Br)2(NO)(dmpe)2]Br was prepared from the complex [W(Br)3(NO)(CH3CN)2], which is easily synthesized by the reaction of W(Br)5 with gaseous NO in dibromomethane in the presence of acetonitrile at room temperature according to the literature procedure (Johnson, 1967; Berg & Dehnicke, 1985). 3.00 g (5.14 mmol) of W(Br)5 and 0.54 ml (10.28 mmol) of acetonitrile were dissolved in 100 ml of dibromomethane in a 250 ml three-necked flask. Nitric oxide was passed through the solution, which was stirred at room temperature until the black colour of the solution turned to a light green precipitate after ca 1 h. The solution was concentrated to one third of its original volume and the addition of pentane (10 ml) afforded a green–yellow voluminous precipitate, which was filtered off, washed with pentane and dried in vacuum. Then [W(Br)2(NO)(dmpe)2]Br (0.188 g, 0.25 mmol) was added to a stirred suspension of 1% sodium amalgam (0.026 g of Na, 1.12 mmol) in 20 ml of tetrahydrofurane. The mixture was then stirred overnight at room temperature. The solution was filtered off, separated from the mercury-containing residue, and the solvent was removed under vacuum. The residue was washed with pentane (10 ml x 2) and extracted with tetrahydrofurane (20 ml), concentrated and cooled to -30°C overnight yielding the title compound in the form of yellow crystals.
Yield: 0.126 g (85%).
IR (cm-1, CH2Cl2): (NO) 1535.
1H NMR (200.0 MHz, THF-d8, 25°C): d 1.55 (m, 4H, P(CH2)2P); 1.49 (s, 24H, PCH3) and 1.29 (m, 4H, P(CH2)2P).
31P{1H} NMR (80.9 MHz, THF-d8, 25°C): d 17.5 (s, 1JPW = 380 Hz).
13C{1H} NMR (50.3 MHz, THF-d8, 25°C): d 32.4 (m, P(CH2)2P); 15.1 (m, PCH3); 14.4 (m, PCH3).
Anal. Calcd for C12H32BrNOP4W: C, 24.25; H, 5.39; N, 2.36. Found: C,24.60; H, 5.43; N, 2.28.
The initial
of the structure produced very large thermal parameters for bromine, nitrogen, oxygen and all carbon atoms, especially for C2, C5 and C6 (> 0.175), and inadequate geometry of the dmpe ligand with coplanar P1, C1, C2 and P2 atoms. The location of the highest residual peaks showed unambigously that each of the Br, N, O and C atoms are distributed over two sites. The introduction of the disordered model, with respect to NO/Br and all carbon atoms of dmpe, yielded significantly lower discrepancy factors and ensured reasonable geometry of the dmpe ligand. Nevertheless, the highly disordered model prompted us to consider possibility of alternative space groups (P2/c, P2 and Pc). However, none of them allowed to carry out reasonable of the structure. Therefore we ended up with the P21/c with significantly disordered model.All hydrogen atoms were included at calculated positions and treated as riding atoms with C—H distances of 0.96–0.97 Å and Uiso(H) = 1.3Ueq(C). Positional disorders were refined with an occupancy factor of 0.5 for the trans NO and Br ligands since the metal atom occupies a special position in the inversion centre; the occupancy factors for two components of the dmpe disorder were deterimined by the
The temperature factors of the C atoms of the dmpe ligand were refined with the SIMU, DELU and EADP restraints (Sheldrick, 1997). The largest positive and negative residual peaks are located at about 0.9 Å from P2 and W1, respectively; no chemical meaning could be attributed to these features.According to the Cambridge Structural Database (Release 2006, Version 5.28; Allen, 2002), the title compound (I) is the first example of the structurally studied tungsten species with nitrosyl and bromide ligands. The tungsten atom lies on a special position in the inversion centre: the nitrosyl group and the halide ligand in trans-position to each other are disordered. The bidentate dmpe ligand (dmpe = 1,2-bis(dimethylphosphino)ethane) is also disordered over two positions which share common locations of the P atoms, but have different locations for all C atoms; the occupancy of the major component of the disorder was refined to 0.52 (1), which indicates, that both components are effectively equally represented in the structure.
The tungsten atom has a distorted octahedral coordination (Fig. 1). The W1—Br1 distance of 2.555 (3) Å is clearly shorter than in the related bromo-bis(1,2-bis(dimethylphosphino)ethane)tungsten complexes, with the bromide ligand in trans position to the triply bonded C—Ph ligand [2.744 (2) Å and 2.702 (2) Å in Manna et al. (1992)] or to an oxo ligand [2.678 (2) Å in Cotton et al. (1989)]. Nevertheless, the reported value is very similar to the bond distances observed in (PPh3)2Br2(CO)2W, where bromide is in trans position to the carbonyl ligand [2.55–2.57 Å in Drew et al. (1982), Cotton & Meadows (1984)].
For related nitrosyltetrakis(trimethylphosphine)tungsten complexes, see: Chen et al. (2005). For bis[1,2-bis(dimethylphosphino)ethane]bromidotungsten complexes, see: Manna et al. (1992); Cotton et al. (1989). For carbonylphosphine tungsten complexes, see: Drew et al. (1982); Cotton & Meadows (1984). For synthesis of the precursors of the title compound, see: Johnson (1967); Berg & Dehnicke (1985). For the Cambridge Structural Database, see Allen (2002).
Data collection: IPDS Software (Stoe & Cie, 1999); cell
IPDS Software (Stoe & Cie, 1999); data reduction: X-RED (Stoe & Cie, 1999); program(s) used to solve structure: SHELXS97 (Sheldrick, 1997); program(s) used to refine structure: SHELXL97 (Sheldrick, 1997); molecular graphics: ORTEP-3 for Windows (Farrugia, 1997); software used to prepare material for publication: WinGX (Farrugia, 1999) and SHELXL97 (Sheldrick, 1997).Fig. 1. The molecular structure of (I) with the atom-labeling scheme (displacement ellipsoids are drawn at the 20% probability level). The unlabeled atoms are derived from the corresponding labeled atoms by the 1 - x, -y, 1 - z symmetry transformation. Only one component of the disorder is shown for the nitrosyl/bromide groups as well as for the carbon atoms of the dmpe ligand. |
[WBr(NO)(C6H16P2)2] | F(000) = 576 |
Mr = 594.01 | Dx = 1.819 Mg m−3 |
Monoclinic, P21/c | Mo Kα radiation, λ = 0.71073 Å |
Hall symbol: -P 2ybc | Cell parameters from 7998 reflections |
a = 8.8909 (14) Å | θ = 3.1–30.3° |
b = 12.5386 (16) Å | µ = 7.46 mm−1 |
c = 12.823 (2) Å | T = 183 K |
β = 130.639 (14)° | Block, yellow |
V = 1084.8 (4) Å3 | 0.45 × 0.39 × 0.28 mm |
Z = 2 |
Stoe IPDS diffractometer | 1415 reflections with I > 2σ(I) |
Graphite monochromator | Rint = 0.076 |
φ rotation scan | θmax = 25.0°, θmin = 3.4° |
Absorption correction: numerical (Coppens et al., 1965) | h = −10→8 |
Tmin = 0.086, Tmax = 0.213 | k = 0→14 |
19322 measured reflections | l = 0→15 |
1901 independent reflections |
Refinement on F2 | Primary atom site location: structure-invariant direct methods |
Least-squares matrix: full | Secondary atom site location: difference Fourier map |
R[F2 > 2σ(F2)] = 0.034 | Hydrogen site location: inferred from neighbouring sites |
wR(F2) = 0.089 | H-atom parameters constrained |
S = 0.92 | w = 1/[σ2(Fo2) + (0.0711P)2] where P = (Fo2 + 2Fc2)/3 |
1901 reflections | (Δ/σ)max < 0.001 |
133 parameters | Δρmax = 2.37 e Å−3 |
45 restraints | Δρmin = −1.59 e Å−3 |
[WBr(NO)(C6H16P2)2] | V = 1084.8 (4) Å3 |
Mr = 594.01 | Z = 2 |
Monoclinic, P21/c | Mo Kα radiation |
a = 8.8909 (14) Å | µ = 7.46 mm−1 |
b = 12.5386 (16) Å | T = 183 K |
c = 12.823 (2) Å | 0.45 × 0.39 × 0.28 mm |
β = 130.639 (14)° |
Stoe IPDS diffractometer | 1901 independent reflections |
Absorption correction: numerical (Coppens et al., 1965) | 1415 reflections with I > 2σ(I) |
Tmin = 0.086, Tmax = 0.213 | Rint = 0.076 |
19322 measured reflections |
R[F2 > 2σ(F2)] = 0.034 | 45 restraints |
wR(F2) = 0.089 | H-atom parameters constrained |
S = 0.92 | Δρmax = 2.37 e Å−3 |
1901 reflections | Δρmin = −1.59 e Å−3 |
133 parameters |
Geometry. All e.s.d.'s (except the e.s.d. in the dihedral angle between two l.s. planes) are estimated using the full covariance matrix. The cell e.s.d.'s are taken into account individually in the estimation of e.s.d.'s in distances, angles and torsion angles; correlations between e.s.d.'s in cell parameters are only used when they are defined by crystal symmetry. An approximate (isotropic) treatment of cell e.s.d.'s is used for estimating e.s.d.'s involving l.s. planes. |
Refinement. Refinement of F2 against ALL reflections. The weighted R-factor wR and goodness of fit S are based on F2, conventional R-factors R are based on F, with F set to zero for negative F2. The threshold expression of F2 > σ(F2) is used only for calculating R-factors(gt) etc. and is not relevant to the choice of reflections for refinement. R-factors based on F2 are statistically about twice as large as those based on F, and R- factors based on ALL data will be even larger. |
x | y | z | Uiso*/Ueq | Occ. (<1) | |
W1 | 0.5000 | 0.0000 | 0.5000 | 0.03782 (16) | |
P1 | 0.4214 (3) | 0.02436 (17) | 0.2816 (2) | 0.0576 (5) | |
P2 | 0.2435 (3) | −0.13470 (15) | 0.36543 (19) | 0.0493 (4) | |
Br1 | 0.2422 (4) | 0.1376 (2) | 0.4403 (3) | 0.0554 (6) | 0.50 |
N1 | 0.693 (3) | −0.0969 (14) | 0.5538 (17) | 0.056 (4) | 0.50 |
O1 | 0.822 (3) | −0.1666 (17) | 0.590 (2) | 0.090 (8) | 0.50 |
C1A | 0.273 (3) | −0.0892 (15) | 0.1748 (19) | 0.065 (2) | 0.483 (11) |
H1A1 | 0.2038 | −0.0732 | 0.0792 | 0.085* | 0.483 (11) |
H1A2 | 0.3570 | −0.1507 | 0.2014 | 0.085* | 0.483 (11) |
C2A | 0.119 (2) | −0.1137 (15) | 0.1940 (15) | 0.065 (2) | 0.483 (11) |
H2A1 | 0.0427 | −0.1766 | 0.1415 | 0.085* | 0.483 (11) |
H2A2 | 0.0284 | −0.0543 | 0.1606 | 0.085* | 0.483 (11) |
C3A | 0.631 (3) | 0.0151 (15) | 0.286 (2) | 0.063 (3) | 0.483 (11) |
H3A1 | 0.5828 | 0.0085 | 0.1941 | 0.082* | 0.483 (11) |
H3A2 | 0.7099 | −0.0463 | 0.3387 | 0.082* | 0.483 (11) |
H3A3 | 0.7112 | 0.0782 | 0.3279 | 0.082* | 0.483 (11) |
C4A | 0.292 (3) | 0.1405 (15) | 0.185 (3) | 0.063 (3) | 0.483 (11) |
H4A1 | 0.3818 | 0.2000 | 0.2248 | 0.082* | 0.483 (11) |
H4A2 | 0.1867 | 0.1541 | 0.1856 | 0.082* | 0.483 (11) |
H4A3 | 0.2384 | 0.1304 | 0.0921 | 0.082* | 0.483 (11) |
C5A | 0.322 (3) | −0.2708 (16) | 0.407 (2) | 0.063 (3) | 0.483 (11) |
H5A1 | 0.2086 | −0.3167 | 0.3496 | 0.082* | 0.483 (11) |
H5A2 | 0.3872 | −0.2837 | 0.5015 | 0.082* | 0.483 (11) |
H5A3 | 0.4120 | −0.2851 | 0.3911 | 0.082* | 0.483 (11) |
C6A | 0.034 (3) | −0.1313 (15) | 0.3669 (19) | 0.063 (3) | 0.483 (11) |
H6A1 | 0.0018 | −0.0586 | 0.3680 | 0.082* | 0.483 (11) |
H6A2 | 0.0735 | −0.1674 | 0.4473 | 0.082* | 0.483 (11) |
H6A3 | −0.0792 | −0.1663 | 0.2862 | 0.082* | 0.483 (11) |
C1B | 0.188 (3) | −0.0582 (13) | 0.1376 (16) | 0.065 (2) | 0.517 (11) |
H1B1 | 0.0688 | −0.0217 | 0.1056 | 0.085* | 0.517 (11) |
H1B2 | 0.1835 | −0.0676 | 0.0603 | 0.085* | 0.517 (11) |
C2B | 0.206 (3) | −0.1678 (12) | 0.2005 (15) | 0.065 (2) | 0.517 (11) |
H2B1 | 0.3174 | −0.2078 | 0.2240 | 0.085* | 0.517 (11) |
H2B2 | 0.0858 | −0.2094 | 0.1363 | 0.085* | 0.517 (11) |
C3B | 0.574 (3) | −0.0126 (15) | 0.245 (2) | 0.075 (3) | 0.517 (11) |
H3B1 | 0.4959 | −0.0165 | 0.1477 | 0.097* | 0.517 (11) |
H3B2 | 0.6320 | −0.0810 | 0.2856 | 0.097* | 0.517 (11) |
H3B3 | 0.6767 | 0.0395 | 0.2832 | 0.097* | 0.517 (11) |
C4B | 0.330 (3) | 0.1570 (14) | 0.196 (3) | 0.075 (3) | 0.517 (11) |
H4B1 | 0.3094 | 0.1558 | 0.1129 | 0.097* | 0.517 (11) |
H4B2 | 0.4258 | 0.2107 | 0.2567 | 0.097* | 0.517 (11) |
H4B3 | 0.2068 | 0.1728 | 0.1750 | 0.097* | 0.517 (11) |
C5B | 0.280 (3) | −0.2738 (16) | 0.422 (2) | 0.075 (3) | 0.517 (11) |
H5B1 | 0.1836 | −0.3183 | 0.3446 | 0.097* | 0.517 (11) |
H5B2 | 0.2631 | −0.2794 | 0.4889 | 0.097* | 0.517 (11) |
H5B3 | 0.4106 | −0.2966 | 0.4625 | 0.097* | 0.517 (11) |
C6B | −0.007 (3) | −0.1078 (15) | 0.282 (2) | 0.075 (3) | 0.517 (11) |
H6B1 | −0.0583 | −0.0568 | 0.2102 | 0.097* | 0.517 (11) |
H6B2 | −0.0158 | −0.0794 | 0.3475 | 0.097* | 0.517 (11) |
H6B3 | −0.0822 | −0.1725 | 0.2438 | 0.097* | 0.517 (11) |
U11 | U22 | U33 | U12 | U13 | U23 | |
W1 | 0.0415 (2) | 0.0316 (2) | 0.0478 (2) | −0.00644 (16) | 0.03232 (17) | −0.00255 (17) |
P1 | 0.0701 (12) | 0.0545 (12) | 0.0644 (11) | 0.0032 (9) | 0.0509 (11) | 0.0073 (9) |
P2 | 0.0425 (9) | 0.0415 (10) | 0.0570 (10) | −0.0105 (8) | 0.0293 (8) | 0.0000 (8) |
Br1 | 0.0483 (14) | 0.0447 (15) | 0.0639 (14) | 0.0138 (11) | 0.0323 (13) | 0.0059 (12) |
N1 | 0.062 (11) | 0.047 (10) | 0.059 (8) | 0.013 (8) | 0.040 (8) | 0.012 (8) |
O1 | 0.095 (16) | 0.086 (15) | 0.075 (12) | 0.049 (10) | 0.049 (12) | 0.029 (9) |
C1A | 0.066 (6) | 0.064 (6) | 0.048 (4) | −0.007 (4) | 0.029 (4) | −0.007 (4) |
C2A | 0.066 (6) | 0.064 (6) | 0.048 (4) | −0.007 (4) | 0.029 (4) | −0.007 (4) |
C3A | 0.068 (6) | 0.059 (6) | 0.070 (6) | −0.005 (5) | 0.048 (5) | −0.002 (5) |
C4A | 0.068 (6) | 0.059 (6) | 0.070 (6) | −0.005 (5) | 0.048 (5) | −0.002 (5) |
C5A | 0.068 (6) | 0.059 (6) | 0.070 (6) | −0.005 (5) | 0.048 (5) | −0.002 (5) |
C6A | 0.068 (6) | 0.059 (6) | 0.070 (6) | −0.005 (5) | 0.048 (5) | −0.002 (5) |
C1B | 0.066 (6) | 0.064 (6) | 0.048 (4) | −0.007 (4) | 0.029 (4) | −0.007 (4) |
C2B | 0.066 (6) | 0.064 (6) | 0.048 (4) | −0.007 (4) | 0.029 (4) | −0.008 (4) |
C3B | 0.079 (7) | 0.068 (6) | 0.077 (6) | −0.015 (5) | 0.051 (5) | −0.007 (5) |
C4B | 0.079 (7) | 0.068 (6) | 0.077 (6) | −0.015 (5) | 0.051 (5) | −0.007 (5) |
C5B | 0.079 (7) | 0.068 (6) | 0.077 (6) | −0.015 (5) | 0.051 (5) | −0.007 (5) |
C6B | 0.079 (7) | 0.068 (6) | 0.077 (6) | −0.015 (5) | 0.051 (5) | −0.007 (5) |
W1—N1i | 1.83 (2) | C3A—H3A3 | 0.9600 |
W1—N1 | 1.83 (2) | C4A—H4A1 | 0.9600 |
W1—P1i | 2.424 (2) | C4A—H4A2 | 0.9600 |
W1—P1 | 2.424 (2) | C4A—H4A3 | 0.9600 |
W1—P2i | 2.4302 (18) | C5A—H5A1 | 0.9600 |
W1—P2 | 2.4302 (18) | C5A—H5A2 | 0.9600 |
W1—Br1i | 2.555 (3) | C5A—H5A3 | 0.9600 |
W1—Br1 | 2.555 (3) | C6A—H6A1 | 0.9600 |
P1—C3B | 1.76 (2) | C6A—H6A2 | 0.9600 |
P1—C4A | 1.77 (2) | C6A—H6A3 | 0.9600 |
P1—C1A | 1.814 (16) | C1B—C2B | 1.551 (17) |
P1—C3A | 1.833 (18) | C1B—H1B1 | 0.9700 |
P1—C4B | 1.86 (2) | C1B—H1B2 | 0.9700 |
P1—C1B | 1.946 (15) | C2B—H2B1 | 0.9700 |
P2—C2A | 1.720 (15) | C2B—H2B2 | 0.9700 |
P2—C6B | 1.763 (17) | C3B—H3B1 | 0.9600 |
P2—C5A | 1.788 (19) | C3B—H3B2 | 0.9600 |
P2—C5B | 1.836 (19) | C3B—H3B3 | 0.9600 |
P2—C6A | 1.871 (16) | C4B—H4B1 | 0.9600 |
P2—C2B | 1.957 (16) | C4B—H4B2 | 0.9600 |
N1—O1 | 1.267 (19) | C4B—H4B3 | 0.9600 |
C1A—C2A | 1.566 (18) | C5B—H5B1 | 0.9600 |
C1A—H1A1 | 0.9700 | C5B—H5B2 | 0.9600 |
C1A—H1A2 | 0.9700 | C5B—H5B3 | 0.9600 |
C2A—H2A1 | 0.9700 | C6B—H6B1 | 0.9600 |
C2A—H2A2 | 0.9700 | C6B—H6B2 | 0.9600 |
C3A—H3A1 | 0.9600 | C6B—H6B3 | 0.9600 |
C3A—H3A2 | 0.9600 | ||
N1—W1—Br1 | 176.5 (5) | H1A1—C1A—H1A2 | 108.4 |
O1—N1—W1 | 177.9 (19) | C1A—C2A—P2 | 109.3 (12) |
N1i—W1—P1i | 90.8 (5) | C1A—C2A—H2A1 | 109.8 |
N1—W1—P1i | 89.2 (5) | P2—C2A—H2A1 | 109.8 |
N1—W1—P1 | 90.8 (5) | C1A—C2A—H2A2 | 109.8 |
N1i—W1—P1 | 89.2 (5) | P2—C2A—H2A2 | 109.8 |
N1i—W1—P2i | 91.3 (5) | H2A1—C2A—H2A2 | 108.3 |
N1—W1—P2i | 88.7 (5) | P1—C3A—H3A1 | 109.5 |
P1i—W1—P2i | 80.57 (7) | P1—C3A—H3A2 | 109.5 |
P1—W1—P2i | 99.43 (7) | P1—C3A—H3A3 | 109.5 |
N1—W1—P2 | 91.3 (5) | P1—C4A—H4A1 | 109.5 |
N1i—W1—P2 | 88.7 (5) | P1—C4A—H4A2 | 109.5 |
P1i—W1—P2 | 99.43 (7) | P1—C4A—H4A3 | 109.5 |
P1—W1—P2 | 80.57 (7) | P2—C5A—H5A1 | 109.5 |
P1i—W1—P1 | 180.0 | P2—C5A—H5A2 | 109.5 |
P2i—W1—P2 | 180.0 | P2—C5A—H5A3 | 109.5 |
N1i—W1—Br1i | 176.5 (5) | P2—C6A—H6A1 | 109.5 |
P1i—W1—Br1i | 92.38 (9) | P2—C6A—H6A2 | 109.5 |
P1—W1—Br1i | 87.62 (9) | P2—C6A—H6A3 | 109.5 |
P2i—W1—Br1i | 90.72 (7) | C2B—C1B—P1 | 107.1 (10) |
P2—W1—Br1i | 89.28 (7) | C2B—C1B—H1B1 | 110.3 |
P1i—W1—Br1 | 87.62 (9) | P1—C1B—H1B1 | 110.3 |
P1—W1—Br1 | 92.38 (9) | C2B—C1B—H1B2 | 110.3 |
P2i—W1—Br1 | 89.28 (7) | P1—C1B—H1B2 | 110.3 |
P2—W1—Br1 | 90.72 (7) | H1B1—C1B—H1B2 | 108.5 |
C4A—P1—C1A | 107.2 (10) | C1B—C2B—P2 | 105.3 (11) |
C4A—P1—C3A | 104.9 (9) | C1B—C2B—H2B1 | 110.7 |
C1A—P1—C3A | 101.6 (9) | P2—C2B—H2B1 | 110.7 |
C3B—P1—C4B | 101.4 (10) | C1B—C2B—H2B2 | 110.7 |
C3B—P1—C1B | 97.8 (9) | P2—C2B—H2B2 | 110.7 |
C4B—P1—C1B | 97.4 (9) | H2B1—C2B—H2B2 | 108.8 |
C3B—P1—W1 | 125.5 (8) | P1—C3B—H3B1 | 109.5 |
C4A—P1—W1 | 118.7 (10) | P1—C3B—H3B2 | 109.5 |
C1A—P1—W1 | 107.0 (6) | H3B1—C3B—H3B2 | 109.5 |
C3A—P1—W1 | 115.7 (7) | P1—C3B—H3B3 | 109.5 |
C4B—P1—W1 | 118.6 (10) | H3B1—C3B—H3B3 | 109.5 |
C1B—P1—W1 | 110.9 (5) | H3B2—C3B—H3B3 | 109.5 |
C2A—P2—C5A | 109.0 (9) | P1—C4B—H4B1 | 109.5 |
C6B—P2—C5B | 104.3 (9) | P1—C4B—H4B2 | 109.5 |
C2A—P2—C6A | 101.2 (8) | H4B1—C4B—H4B2 | 109.5 |
C5A—P2—C6A | 102.5 (8) | P1—C4B—H4B3 | 109.5 |
C6B—P2—C2B | 97.2 (8) | H4B1—C4B—H4B3 | 109.5 |
C5B—P2—C2B | 95.1 (8) | H4B2—C4B—H4B3 | 109.5 |
C2A—P2—W1 | 109.0 (6) | P2—C5B—H5B1 | 109.5 |
C6B—P2—W1 | 121.8 (6) | P2—C5B—H5B2 | 109.5 |
C5A—P2—W1 | 116.6 (7) | H5B1—C5B—H5B2 | 109.5 |
C5B—P2—W1 | 122.6 (7) | P2—C5B—H5B3 | 109.5 |
C6A—P2—W1 | 117.1 (6) | H5B1—C5B—H5B3 | 109.5 |
C2B—P2—W1 | 109.7 (5) | H5B2—C5B—H5B3 | 109.5 |
Br1i—N1—W1 | 167.8 (18) | P2—C6B—H6B1 | 109.5 |
C2A—C1A—P1 | 108.5 (12) | P2—C6B—H6B2 | 109.5 |
C2A—C1A—H1A1 | 110.0 | H6B1—C6B—H6B2 | 109.5 |
P1—C1A—H1A1 | 110.0 | P2—C6B—H6B3 | 109.5 |
C2A—C1A—H1A2 | 110.0 | H6B1—C6B—H6B3 | 109.5 |
P1—C1A—H1A2 | 110.0 | H6B2—C6B—H6B3 | 109.5 |
N1i—W1—P1—C3B | 162.8 (9) | P1i—W1—P2—C5B | −52.2 (8) |
N1—W1—P1—C3B | −17.2 (9) | P1—W1—P2—C5B | 127.8 (8) |
P2i—W1—P1—C3B | 71.6 (8) | Br1i—W1—P2—C5B | 40.1 (8) |
P2—W1—P1—C3B | −108.4 (8) | Br1—W1—P2—C5B | −139.9 (8) |
Br1i—W1—P1—C3B | −18.7 (8) | N1i—W1—P2—C6A | −38.8 (9) |
Br1—W1—P1—C3B | 161.3 (8) | N1—W1—P2—C6A | 141.2 (9) |
N1i—W1—P1—C4A | 19.6 (9) | P1i—W1—P2—C6A | 51.8 (7) |
N1—W1—P1—C4A | −160.4 (9) | P1—W1—P2—C6A | −128.2 (7) |
P2i—W1—P1—C4A | −71.6 (7) | Br1i—W1—P2—C6A | 144.1 (7) |
P2—W1—P1—C4A | 108.4 (7) | Br1—W1—P2—C6A | −35.9 (7) |
Br1i—W1—P1—C4A | −161.9 (7) | N1i—W1—P2—C2B | 107.4 (7) |
Br1—W1—P1—C4A | 18.1 (7) | N1—W1—P2—C2B | −72.6 (7) |
N1i—W1—P1—C1A | −101.9 (8) | P1i—W1—P2—C2B | −162.1 (5) |
N1—W1—P1—C1A | 78.1 (8) | P1—W1—P2—C2B | 17.9 (5) |
P2i—W1—P1—C1A | 167.0 (7) | Br1i—W1—P2—C2B | −69.8 (5) |
P2—W1—P1—C1A | −13.0 (7) | Br1—W1—P2—C2B | 110.2 (5) |
Br1i—W1—P1—C1A | 76.7 (7) | N1i—W1—Br1—O1i | −14 (13) |
Br1—W1—P1—C1A | −103.3 (7) | P1i—W1—Br1—O1i | −169 (8) |
N1i—W1—P1—C3A | 145.7 (8) | P1—W1—Br1—O1i | 11 (8) |
N1—W1—P1—C3A | −34.3 (8) | P2i—W1—Br1—O1i | 111 (8) |
P2i—W1—P1—C3A | 54.6 (7) | P2—W1—Br1—O1i | −69 (8) |
P2—W1—P1—C3A | −125.4 (7) | P1i—W1—Br1—N1i | −155 (8) |
Br1i—W1—P1—C3A | −35.7 (7) | P1—W1—Br1—N1i | 25 (8) |
Br1—W1—P1—C3A | 144.3 (7) | P2i—W1—Br1—N1i | 125 (8) |
N1i—W1—P1—C4B | 31.1 (9) | P2—W1—Br1—N1i | −55 (8) |
N1—W1—P1—C4B | −148.9 (9) | P1i—W1—N1—Br1i | 155 (8) |
P2i—W1—P1—C4B | −60.0 (8) | P1—W1—N1—Br1i | −25 (8) |
P2—W1—P1—C4B | 120.0 (8) | P2i—W1—N1—Br1i | −125 (8) |
Br1i—W1—P1—C4B | −150.4 (8) | P2—W1—N1—Br1i | 55 (8) |
Br1—W1—P1—C4B | 29.6 (8) | C3B—P1—C1A—C2A | 167.4 (15) |
N1i—W1—P1—C1B | −80.3 (8) | C4A—P1—C1A—C2A | −86.4 (16) |
N1—W1—P1—C1B | 99.7 (8) | C3A—P1—C1A—C2A | 163.8 (13) |
P2i—W1—P1—C1B | −171.5 (6) | C4B—P1—C1A—C2A | −92.6 (16) |
P2—W1—P1—C1B | 8.5 (6) | C1B—P1—C1A—C2A | −62 (2) |
Br1i—W1—P1—C1B | 98.2 (6) | W1—P1—C1A—C2A | 42.0 (14) |
Br1—W1—P1—C1B | −81.8 (6) | P1—C1A—C2A—P2 | −56.4 (16) |
N1i—W1—P2—C2A | 75.3 (9) | C6B—P2—C2A—C1A | 162.2 (16) |
N1—W1—P2—C2A | −104.7 (9) | C5A—P2—C2A—C1A | −84.5 (15) |
P1i—W1—P2—C2A | 165.8 (7) | C5B—P2—C2A—C1A | −100.6 (15) |
P1—W1—P2—C2A | −14.2 (7) | C6A—P2—C2A—C1A | 167.9 (13) |
Br1i—W1—P2—C2A | −101.9 (7) | C2B—P2—C2A—C1A | −52.8 (13) |
Br1—W1—P2—C2A | 78.1 (7) | W1—P2—C2A—C1A | 43.9 (14) |
N1i—W1—P2—C6B | −4.9 (9) | C3B—P1—C1B—C2B | 92.0 (14) |
N1—W1—P2—C6B | 175.1 (9) | C4A—P1—C1B—C2B | −161.1 (16) |
P1i—W1—P2—C6B | 85.7 (8) | C1A—P1—C1B—C2B | 41.9 (18) |
P1—W1—P2—C6B | −94.3 (8) | C3A—P1—C1B—C2B | 93.2 (14) |
Br1i—W1—P2—C6B | 178.0 (8) | C4B—P1—C1B—C2B | −165.4 (15) |
Br1—W1—P2—C6B | −2.0 (8) | W1—P1—C1B—C2B | −40.9 (14) |
N1i—W1—P2—C5A | −160.8 (9) | P1—C1B—C2B—P2 | 53.8 (14) |
N1—W1—P2—C5A | 19.2 (9) | C2A—P2—C2B—C1B | 46.2 (13) |
P1i—W1—P2—C5A | −70.2 (7) | C6B—P2—C2B—C1B | 79.5 (13) |
P1—W1—P2—C5A | 109.8 (7) | C5A—P2—C2B—C1B | −163.9 (14) |
Br1i—W1—P2—C5A | 22.1 (7) | C5B—P2—C2B—C1B | −175.4 (13) |
Br1—W1—P2—C5A | −157.9 (7) | C6A—P2—C2B—C1B | 95.7 (14) |
N1i—W1—P2—C5B | −142.7 (9) | W1—P2—C2B—C1B | −48.1 (12) |
N1—W1—P2—C5B | 37.3 (9) |
Symmetry code: (i) −x+1, −y, −z+1. |
Experimental details
Crystal data | |
Chemical formula | [WBr(NO)(C6H16P2)2] |
Mr | 594.01 |
Crystal system, space group | Monoclinic, P21/c |
Temperature (K) | 183 |
a, b, c (Å) | 8.8909 (14), 12.5386 (16), 12.823 (2) |
β (°) | 130.639 (14) |
V (Å3) | 1084.8 (4) |
Z | 2 |
Radiation type | Mo Kα |
µ (mm−1) | 7.46 |
Crystal size (mm) | 0.45 × 0.39 × 0.28 |
Data collection | |
Diffractometer | Stoe IPDS |
Absorption correction | Numerical (Coppens et al., 1965) |
Tmin, Tmax | 0.086, 0.213 |
No. of measured, independent and observed [I > 2σ(I)] reflections | 19322, 1901, 1415 |
Rint | 0.076 |
(sin θ/λ)max (Å−1) | 0.595 |
Refinement | |
R[F2 > 2σ(F2)], wR(F2), S | 0.034, 0.089, 0.92 |
No. of reflections | 1901 |
No. of parameters | 133 |
No. of restraints | 45 |
H-atom treatment | H-atom parameters constrained |
Δρmax, Δρmin (e Å−3) | 2.37, −1.59 |
Computer programs: IPDS Software (Stoe & Cie, 1999), X-RED (Stoe & Cie, 1999), SHELXS97 (Sheldrick, 1997), ORTEP-3 for Windows (Farrugia, 1997), WinGX (Farrugia, 1999) and SHELXL97 (Sheldrick, 1997).
W1—N1 | 1.83 (2) | W1—Br1 | 2.555 (3) |
W1—P1 | 2.424 (2) | N1—O1 | 1.267 (19) |
W1—P2 | 2.4302 (18) | ||
N1—W1—Br1 | 176.5 (5) | P1i—W1—P1 | 180.0 |
O1—N1—W1 | 177.9 (19) | P2i—W1—P2 | 180.0 |
N1—W1—P1 | 90.8 (5) | P1i—W1—Br1 | 87.62 (9) |
N1i—W1—P1 | 89.2 (5) | P1—W1—Br1 | 92.38 (9) |
N1—W1—P2 | 91.3 (5) | P2i—W1—Br1 | 89.28 (7) |
N1i—W1—P2 | 88.7 (5) | P2—W1—Br1 | 90.72 (7) |
Symmetry code: (i) −x+1, −y, −z+1. |
Acknowledgements
The authors thank the University of Zürich and the Swiss National Science Foundation for financial support.
References
Allen, F. H. (2002). Acta Cryst. B58, 380–388. Web of Science CSD CrossRef CAS IUCr Journals Google Scholar
Berg, A. & Dehnicke, K. (1985). Z. Naturforsch. Teil B, 40, 842–844. Google Scholar
Chen, Z., Schmalle, H. W., Fox, T. & Berke, H. (2005). Dalton Trans. pp. 580–587. Web of Science CSD CrossRef Google Scholar
Coppens, P., Leiserowitz, L. & Rabinovich, D. (1965). Acta Cryst. 18, 1035–1038. CrossRef CAS IUCr Journals Web of Science Google Scholar
Cotton, F. A., Kibala, P. A., McCaleb, C. S. & Sandor, R. B. W. (1989). Acta Cryst. C45, 1126–1128. CSD CrossRef CAS Web of Science IUCr Journals Google Scholar
Cotton, F. A. & Meadows, J. H. (1984). Inorg. Chem. 23, 4683–4688. CrossRef Google Scholar
Drew, M. G. B., Brisdon, B. J. & Buttery, A. G. (1982). Acta Cryst. B38, 1598–1601. CSD CrossRef CAS Web of Science IUCr Journals Google Scholar
Farrugia, L. J. (1997). J. Appl. Cryst. 30, 565. CrossRef IUCr Journals Google Scholar
Farrugia, L. J. (1999). J. Appl. Cryst. 32, 837–838. CrossRef CAS IUCr Journals Google Scholar
Johnson, B. F. G. (1967). J. Chem. Soc. A, 3, 475–478. CrossRef Web of Science Google Scholar
Manna, J., Gilbert, T. M., Dallinger, R. F., Geib, S. J. & Hopkins, M. D. (1992). J. Am. Chem. Soc. 114, 5870–5872. CSD CrossRef CAS Web of Science Google Scholar
Sheldrick, G. M. (1997). SHELXS97 and SHELXL97. University of Göttingen, Germany. Google Scholar
Stoe & Cie (1999). IPDS Software. Version 2.92. Stoe & Cie, Darmstadt, Germany. Google Scholar
This is an open-access article distributed under the terms of the Creative Commons Attribution (CC-BY) Licence, which permits unrestricted use, distribution, and reproduction in any medium, provided the original authors and source are cited.
According to the Cambridge Structural Database (Release 2006, Version 5.28; Allen, 2002), the title compound (I) is the first example of the structurally studied tungsten species with nitrosyl and bromide ligands. The tungsten atom lies on a special position in the inversion centre: the nitrosyl group and the halide ligand in trans-position to each other are disordered. The bidentate dmpe ligand (dmpe = 1,2-bis(dimethylphosphino)ethane) is also disordered over two positions which share common locations of the P atoms, but have different locations for all C atoms; the occupancy of the major component of the disorder was refined to 0.52 (1), which indicates, that both components are effectively equally represented in the structure.
The tungsten atom has a distorted octahedral coordination (Fig. 1). The W1—Br1 distance of 2.555 (3) Å is clearly shorter than in the related bromo-bis(1,2-bis(dimethylphosphino)ethane)tungsten complexes, with the bromide ligand in trans position to the triply bonded C—Ph ligand [2.744 (2) Å and 2.702 (2) Å in Manna et al. (1992)] or to an oxo ligand [2.678 (2) Å in Cotton et al. (1989)]. Nevertheless, the reported value is very similar to the bond distances observed in (PPh3)2Br2(CO)2W, where bromide is in trans position to the carbonyl ligand [2.55–2.57 Å in Drew et al. (1982), Cotton & Meadows (1984)].