metal-organic compounds
(Carbonato-κ2O,O′)bis(di-2-pyridylamine-κ2N,N′)cobalt(III) bromide
aFaculty of Chemistry, Adam Mickiewicz University, 60-780 Poznań, Poland, and bDepartment of Chemistry, Aristotle University of Thessaloniki, Thessaloniki 54124, Greece
*Correspondence e-mail: magdan@amu.edu.pl
In the title compound, [Co(CO3)(C10H9N3)2]Br, a distorted octahedral coordination of the CoIII atom is completed by four N atoms of the two chelating di-2-pyridylamine ligands and two O atoms of the chelating carbonate anion. The di-2-pyridylamine ligands are nonplanar and the dihedral angles between the 2-pyridyl groups are 29.11 (9) and 37.15 (12)°. The coordination cation, which has approximate C2 symmetry, is connected to the bromide ion via an N—H⋯Br− hydrogen bond. The ionic pair thus formed is further assembled into a dimer via N—H⋯O interactions about an inversion centre. A set of weaker C—H⋯O and C—H⋯Br− interactions connect the dimers into a three-dimensional network.
Related literature
For the κ2N,N′)](carbonato-κ2O,O′)cobalt(III) nitrate, see: Castillo et al. (2011). For the of the perchlorate salt, see: Williams et al. (1987).
of the isostructural [bis(di-2-pyridylamine-Experimental
Crystal data
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Refinement
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Data collection: CrysAlis PRO (Agilent Technologies, 2010); cell CrysAlis PRO; data reduction: CrysAlis PRO; program(s) used to solve structure: SHELXS97 (Sheldrick, 2008); program(s) used to refine structure: SHELXL97 (Sheldrick, 2008); molecular graphics: ORTEP-3 for Windows (Farrugia, 1997) and Mercury (Macrae et al., 2006); software used to prepare material for publication: SHELXL97.
Supporting information
10.1107/S1600536811008051/su2260sup1.cif
contains datablocks global, I. DOI:Structure factors: contains datablock I. DOI: 10.1107/S1600536811008051/su2260Isup2.hkl
2 mmol (0.342 g) of di-2-pyridylamine (Hdpam), dissolved in a small amount of EtOH, was added to a solution of 1 mmol (0.238 g) of CoBr2.H2O in 5 ml of EtOH and the mixture was stirred for 30 min. Then, to this mixture was added dropwise an ethanolic solution containing 1 mmol (0.136 g) of 2-hydroxyacetophenone (Hapo) and 1 mmol of CH3ONa. The solution was stirred at room temperature under an argon atmosphere for 2 h or refluxed with continuous stirring. Two types of crystals precipitated from the solution. The main product, in the form of small crystals of light orange color, was identified as the mixed-ligand CoII complex [Co(dpamH)2(apo)]Br (mean yield 62%). The side-product, in the form of large dark-red crystals, was identified as the CoIIIcomplex, [Co(dpamH)2(CO3)]Br. When the reaction between CoBr2 and Hdpam was repeated in air the title compound, [Co(dpamH)2(CO3)]Br, was obtained as the main product.
The H-atoms of the NH groups were located in difference electron-density maps. In the final cycles of lease-squares
the N—H bond lengths were constrained to 0.86 Å with Uiso(H) = 1.2Ueq(N). All the other H-atoms were initially identified in difference electron-density maps but were placed at calculated positions, with C—H = 0.95 Å, and were refined as riding on their carrier atoms, with Uiso(H) = 1.2Ueq(C).Data collection: CrysAlis PRO (Agilent Technologies, 2010); cell
CrysAlis PRO (Agilent Technologies, 2010); data reduction: CrysAlis PRO (Agilent Technologies, 2010); program(s) used to solve structure: SHELXS97 (Sheldrick, 2008); program(s) used to refine structure: SHELXL97 (Sheldrick, 2008); molecular graphics: ORTEP-3 for Windows (Farrugia, 1997) and Mercury (Macrae et al., 2006); software used to prepare material for publication: SHELXL97 (Sheldrick, 2008).Fig. 1. Asymmetric unit of the title compound with the displacement ellipsoids shown at the 50% probability level. | |
Fig. 2. Centrosymmetric dimers of the ionic pairs of the title compound connected via C10B—H10B···O3 interaction into chains extended along [0 1 0]. N, O, Br and Co atoms are shown as spheres of arbitrary radii. Short contacts and hydrogen bonds are shown with dashed lines. |
[Co(CO3)(C10H9N3)2]Br | F(000) = 1088 |
Mr = 541.25 | Dx = 1.718 Mg m−3 |
Monoclinic, P21/n | Mo Kα radiation, λ = 0.71073 Å |
Hall symbol: -P 2yn | Cell parameters from 8233 reflections |
a = 16.9605 (3) Å | θ = 3.0–30.3° |
b = 7.4322 (1) Å | µ = 2.77 mm−1 |
c = 17.2590 (4) Å | T = 130 K |
β = 105.839 (2)° | Plate, red |
V = 2092.96 (7) Å3 | 0.30 × 0.15 × 0.05 mm |
Z = 4 |
Oxford Diffraction Xcalibur E diffractometer | 4277 independent reflections |
Radiation source: fine-focus sealed tube | 3386 reflections with I > 2σ(I) |
Graphite monochromator | Rint = 0.064 |
Detector resolution: 16.1544 pixels mm-1 | θmax = 26.4°, θmin = 3.0° |
ω scans | h = −21→21 |
Absorption correction: multi-scan (CrysAlis PRO; Agilent Technologies, 2010) | k = −9→9 |
Tmin = 0.710, Tmax = 0.874 | l = −21→21 |
29846 measured 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)] = 0.037 | Hydrogen site location: inferred from neighbouring sites |
wR(F2) = 0.080 | H-atom parameters constrained |
S = 1.01 | w = 1/[σ2(Fo2) + (0.0316P)2] where P = (Fo2 + 2Fc2)/3 |
4277 reflections | (Δ/σ)max = 0.001 |
289 parameters | Δρmax = 0.79 e Å−3 |
0 restraints | Δρmin = −0.50 e Å−3 |
[Co(CO3)(C10H9N3)2]Br | V = 2092.96 (7) Å3 |
Mr = 541.25 | Z = 4 |
Monoclinic, P21/n | Mo Kα radiation |
a = 16.9605 (3) Å | µ = 2.77 mm−1 |
b = 7.4322 (1) Å | T = 130 K |
c = 17.2590 (4) Å | 0.30 × 0.15 × 0.05 mm |
β = 105.839 (2)° |
Oxford Diffraction Xcalibur E diffractometer | 4277 independent reflections |
Absorption correction: multi-scan (CrysAlis PRO; Agilent Technologies, 2010) | 3386 reflections with I > 2σ(I) |
Tmin = 0.710, Tmax = 0.874 | Rint = 0.064 |
29846 measured reflections |
R[F2 > 2σ(F2)] = 0.037 | 0 restraints |
wR(F2) = 0.080 | H-atom parameters constrained |
S = 1.01 | Δρmax = 0.79 e Å−3 |
4277 reflections | Δρmin = −0.50 e Å−3 |
289 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 | ||
Co1 | 0.79115 (2) | 0.47425 (5) | 0.48500 (2) | 0.01679 (12) | |
Br1 | 0.42522 (2) | 0.71322 (4) | 0.36946 (2) | 0.02940 (11) | |
N1A | 0.83606 (15) | 0.3707 (3) | 0.40419 (14) | 0.0189 (6) | |
C2A | 0.91367 (19) | 0.3175 (4) | 0.42120 (18) | 0.0203 (7) | |
C3A | 0.9525 (2) | 0.2829 (4) | 0.36081 (19) | 0.0255 (8) | |
H3A | 1.0091 | 0.2535 | 0.3741 | 0.031* | |
C4A | 0.9066 (2) | 0.2925 (4) | 0.2818 (2) | 0.0305 (8) | |
H4A | 0.9311 | 0.2677 | 0.2396 | 0.037* | |
C5A | 0.8242 (2) | 0.3387 (4) | 0.2639 (2) | 0.0303 (8) | |
H5A | 0.7914 | 0.3429 | 0.2097 | 0.036* | |
C6A | 0.7916 (2) | 0.3778 (4) | 0.32558 (18) | 0.0261 (8) | |
H6A | 0.7355 | 0.4114 | 0.3134 | 0.031* | |
N7A | 0.95794 (15) | 0.2983 (3) | 0.50046 (15) | 0.0223 (6) | |
H7A | 1.0091 | 0.2787 | 0.5059 | 0.027* | |
C8A | 0.92811 (19) | 0.2571 (4) | 0.56488 (18) | 0.0193 (7) | |
N9A | 0.85087 (15) | 0.3025 (3) | 0.56334 (14) | 0.0171 (6) | |
C10A | 0.8212 (2) | 0.2466 (4) | 0.62506 (18) | 0.0211 (7) | |
H10A | 0.7656 | 0.2708 | 0.6227 | 0.025* | |
C11A | 0.8687 (2) | 0.1567 (4) | 0.69034 (19) | 0.0253 (8) | |
H11A | 0.8469 | 0.1205 | 0.7331 | 0.030* | |
C12A | 0.9494 (2) | 0.1196 (4) | 0.6927 (2) | 0.0287 (8) | |
H12A | 0.9838 | 0.0598 | 0.7381 | 0.034* | |
C13A | 0.9796 (2) | 0.1685 (4) | 0.63018 (19) | 0.0266 (8) | |
H13A | 1.0347 | 0.1426 | 0.6313 | 0.032* | |
N1B | 0.74231 (14) | 0.5957 (3) | 0.55895 (14) | 0.0169 (5) | |
C2B | 0.66482 (18) | 0.6546 (4) | 0.53146 (17) | 0.0171 (7) | |
C3B | 0.63533 (19) | 0.7949 (4) | 0.56985 (18) | 0.0195 (7) | |
H3B | 0.5827 | 0.8453 | 0.5464 | 0.023* | |
C4B | 0.68320 (19) | 0.8582 (4) | 0.64138 (19) | 0.0223 (7) | |
H4B | 0.6641 | 0.9530 | 0.6685 | 0.027* | |
C5B | 0.76043 (19) | 0.7830 (4) | 0.67458 (19) | 0.0219 (7) | |
H5B | 0.7926 | 0.8179 | 0.7265 | 0.026* | |
C6B | 0.78852 (19) | 0.6586 (4) | 0.63082 (18) | 0.0202 (7) | |
H6B | 0.8427 | 0.6139 | 0.6514 | 0.024* | |
N7B | 0.61387 (15) | 0.5775 (3) | 0.46391 (14) | 0.0182 (6) | |
H7B | 0.5646 | 0.6183 | 0.4492 | 0.022* | |
C8B | 0.61995 (18) | 0.4030 (4) | 0.43871 (17) | 0.0173 (7) | |
N9B | 0.69443 (15) | 0.3281 (3) | 0.45216 (14) | 0.0170 (6) | |
C10B | 0.69889 (19) | 0.1502 (4) | 0.43516 (18) | 0.0203 (7) | |
H10B | 0.7512 | 0.0943 | 0.4474 | 0.024* | |
C11B | 0.63142 (19) | 0.0493 (4) | 0.40141 (18) | 0.0219 (7) | |
H11B | 0.6365 | −0.0754 | 0.3917 | 0.026* | |
C12B | 0.5554 (2) | 0.1309 (4) | 0.38152 (18) | 0.0248 (7) | |
H12B | 0.5078 | 0.0643 | 0.3553 | 0.030* | |
C13B | 0.54920 (19) | 0.3088 (4) | 0.39994 (18) | 0.0224 (7) | |
H13B | 0.4974 | 0.3670 | 0.3865 | 0.027* | |
C1 | 0.82969 (19) | 0.7580 (4) | 0.4471 (2) | 0.0224 (7) | |
O1 | 0.75759 (13) | 0.6760 (3) | 0.41586 (12) | 0.0240 (5) | |
O2 | 0.87502 (12) | 0.6516 (3) | 0.50343 (12) | 0.0229 (5) | |
O3 | 0.85043 (14) | 0.8971 (3) | 0.42570 (15) | 0.0363 (6) |
U11 | U22 | U33 | U12 | U13 | U23 | |
Co1 | 0.0119 (2) | 0.0186 (2) | 0.0203 (2) | 0.00264 (17) | 0.00510 (18) | 0.00095 (17) |
Br1 | 0.02154 (19) | 0.02402 (18) | 0.0356 (2) | 0.00546 (14) | −0.00408 (15) | −0.00196 (15) |
N1A | 0.0141 (14) | 0.0245 (14) | 0.0179 (14) | 0.0031 (11) | 0.0042 (11) | 0.0019 (11) |
C2A | 0.0197 (18) | 0.0205 (16) | 0.0220 (17) | 0.0004 (13) | 0.0077 (14) | −0.0015 (13) |
C3A | 0.0230 (19) | 0.0280 (18) | 0.0289 (19) | 0.0047 (14) | 0.0126 (16) | −0.0012 (15) |
C4A | 0.035 (2) | 0.036 (2) | 0.0261 (19) | 0.0044 (16) | 0.0169 (17) | −0.0010 (15) |
C5A | 0.032 (2) | 0.036 (2) | 0.0225 (19) | 0.0023 (16) | 0.0063 (16) | −0.0009 (15) |
C6A | 0.0230 (19) | 0.0319 (19) | 0.0231 (18) | 0.0001 (15) | 0.0058 (15) | 0.0038 (15) |
N7A | 0.0114 (14) | 0.0331 (15) | 0.0230 (15) | 0.0053 (11) | 0.0054 (12) | −0.0009 (12) |
C8A | 0.0167 (17) | 0.0209 (16) | 0.0203 (17) | 0.0022 (13) | 0.0051 (14) | −0.0042 (13) |
N9A | 0.0154 (14) | 0.0182 (13) | 0.0187 (14) | 0.0019 (10) | 0.0063 (11) | −0.0018 (10) |
C10A | 0.0220 (18) | 0.0178 (16) | 0.0250 (17) | 0.0011 (13) | 0.0089 (15) | −0.0016 (13) |
C11A | 0.035 (2) | 0.0195 (16) | 0.0222 (18) | 0.0013 (15) | 0.0089 (16) | 0.0003 (14) |
C12A | 0.031 (2) | 0.0256 (18) | 0.0242 (18) | 0.0072 (15) | −0.0007 (16) | 0.0011 (15) |
C13A | 0.0202 (18) | 0.0299 (18) | 0.0278 (19) | 0.0079 (15) | 0.0030 (15) | 0.0021 (15) |
N1B | 0.0115 (13) | 0.0173 (13) | 0.0213 (14) | 0.0012 (10) | 0.0036 (11) | 0.0011 (11) |
C2B | 0.0174 (17) | 0.0142 (14) | 0.0207 (16) | −0.0019 (12) | 0.0070 (14) | 0.0035 (13) |
C3B | 0.0153 (17) | 0.0192 (16) | 0.0260 (18) | 0.0053 (13) | 0.0091 (14) | 0.0041 (13) |
C4B | 0.0259 (19) | 0.0166 (15) | 0.0278 (18) | 0.0020 (14) | 0.0132 (15) | −0.0017 (14) |
C5B | 0.0258 (19) | 0.0194 (16) | 0.0195 (17) | −0.0048 (14) | 0.0044 (15) | −0.0025 (13) |
C6B | 0.0163 (17) | 0.0189 (15) | 0.0240 (17) | −0.0002 (13) | 0.0035 (14) | 0.0019 (13) |
N7B | 0.0106 (13) | 0.0199 (13) | 0.0233 (14) | 0.0047 (10) | 0.0032 (11) | −0.0007 (11) |
C8B | 0.0155 (16) | 0.0186 (15) | 0.0179 (16) | 0.0014 (13) | 0.0047 (13) | 0.0010 (13) |
N9B | 0.0139 (14) | 0.0198 (13) | 0.0173 (13) | 0.0023 (11) | 0.0045 (11) | −0.0018 (11) |
C10B | 0.0202 (18) | 0.0196 (16) | 0.0210 (17) | 0.0049 (13) | 0.0057 (14) | 0.0005 (13) |
C11B | 0.0259 (19) | 0.0180 (16) | 0.0230 (17) | −0.0009 (14) | 0.0086 (15) | −0.0017 (13) |
C12B | 0.0213 (18) | 0.0264 (18) | 0.0253 (18) | −0.0059 (14) | 0.0040 (15) | −0.0047 (14) |
C13B | 0.0139 (17) | 0.0256 (18) | 0.0268 (18) | 0.0003 (13) | 0.0039 (14) | −0.0014 (14) |
C1 | 0.0176 (18) | 0.0240 (18) | 0.0320 (19) | 0.0082 (14) | 0.0175 (15) | 0.0041 (15) |
O1 | 0.0208 (13) | 0.0246 (12) | 0.0286 (13) | 0.0063 (10) | 0.0099 (10) | 0.0058 (10) |
O2 | 0.0129 (11) | 0.0253 (11) | 0.0314 (13) | 0.0001 (9) | 0.0074 (10) | −0.0032 (10) |
O3 | 0.0330 (15) | 0.0249 (13) | 0.0612 (17) | 0.0006 (11) | 0.0300 (13) | 0.0030 (12) |
Co1—O2 | 1.901 (2) | C13A—H13A | 0.9500 |
Co1—O1 | 1.904 (2) | N1B—C2B | 1.343 (4) |
Co1—N9B | 1.919 (2) | N1B—C6B | 1.357 (4) |
Co1—N1A | 1.923 (2) | C2B—N7B | 1.373 (4) |
Co1—N1B | 1.925 (2) | C2B—C3B | 1.399 (4) |
Co1—N9A | 1.933 (2) | C3B—C4B | 1.363 (4) |
N1A—C2A | 1.328 (4) | C3B—H3B | 0.9500 |
N1A—C6A | 1.362 (4) | C4B—C5B | 1.395 (4) |
C2A—N7A | 1.376 (4) | C4B—H4B | 0.9500 |
C2A—C3A | 1.401 (4) | C5B—C6B | 1.360 (4) |
C3A—C4A | 1.375 (4) | C5B—H5B | 0.9500 |
C3A—H3A | 0.9500 | C6B—H6B | 0.9500 |
C4A—C5A | 1.389 (5) | N7B—C8B | 1.380 (4) |
C4A—H4A | 0.9500 | N7B—H7B | 0.8599 |
C5A—C6A | 1.358 (4) | C8B—N9B | 1.341 (4) |
C5A—H5A | 0.9500 | C8B—C13B | 1.393 (4) |
C6A—H6A | 0.9500 | N9B—C10B | 1.361 (4) |
N7A—C8A | 1.376 (4) | C10B—C11B | 1.359 (4) |
N7A—H7A | 0.8600 | C10B—H10B | 0.9500 |
C8A—N9A | 1.346 (4) | C11B—C12B | 1.380 (4) |
C8A—C13A | 1.389 (4) | C11B—H11B | 0.9500 |
N9A—C10A | 1.362 (4) | C12B—C13B | 1.371 (4) |
C10A—C11A | 1.367 (4) | C12B—H12B | 0.9500 |
C10A—H10A | 0.9500 | C13B—H13B | 0.9500 |
C11A—C12A | 1.386 (5) | C1—O3 | 1.183 (4) |
C11A—H11A | 0.9500 | C1—O2 | 1.325 (4) |
C12A—C13A | 1.364 (4) | C1—O1 | 1.341 (4) |
C12A—H12A | 0.9500 | ||
O2—Co1—O1 | 68.96 (9) | C12A—C13A—C8A | 118.7 (3) |
O2—Co1—N9B | 169.04 (10) | C12A—C13A—H13A | 120.7 |
O1—Co1—N9B | 100.10 (10) | C8A—C13A—H13A | 120.7 |
O2—Co1—N1A | 88.42 (10) | C2B—N1B—C6B | 118.4 (3) |
O1—Co1—N1A | 88.32 (10) | C2B—N1B—Co1 | 118.4 (2) |
N9B—Co1—N1A | 92.01 (10) | C6B—N1B—Co1 | 121.5 (2) |
O2—Co1—N1B | 90.10 (9) | N1B—C2B—N7B | 119.5 (3) |
O1—Co1—N1B | 86.40 (9) | N1B—C2B—C3B | 121.2 (3) |
N9B—Co1—N1B | 88.48 (10) | N7B—C2B—C3B | 119.3 (3) |
N1A—Co1—N1B | 174.69 (10) | C4B—C3B—C2B | 119.0 (3) |
O2—Co1—N9A | 96.62 (10) | C4B—C3B—H3B | 120.5 |
O1—Co1—N9A | 165.55 (10) | C2B—C3B—H3B | 120.5 |
N9B—Co1—N9A | 94.32 (10) | C3B—C4B—C5B | 119.6 (3) |
N1A—Co1—N9A | 90.42 (10) | C3B—C4B—H4B | 120.2 |
N1B—Co1—N9A | 94.81 (10) | C5B—C4B—H4B | 120.2 |
C2A—N1A—C6A | 118.5 (3) | C6B—C5B—C4B | 118.5 (3) |
C2A—N1A—Co1 | 121.6 (2) | C6B—C5B—H5B | 120.8 |
C6A—N1A—Co1 | 119.1 (2) | C4B—C5B—H5B | 120.8 |
N1A—C2A—N7A | 119.3 (3) | N1B—C6B—C5B | 122.6 (3) |
N1A—C2A—C3A | 122.0 (3) | N1B—C6B—H6B | 118.7 |
N7A—C2A—C3A | 118.7 (3) | C5B—C6B—H6B | 118.7 |
C4A—C3A—C2A | 118.3 (3) | C2B—N7B—C8B | 125.2 (2) |
C4A—C3A—H3A | 120.9 | C2B—N7B—H7B | 116.0 |
C2A—C3A—H3A | 120.9 | C8B—N7B—H7B | 112.9 |
C3A—C4A—C5A | 119.8 (3) | N9B—C8B—N7B | 118.9 (3) |
C3A—C4A—H4A | 120.1 | N9B—C8B—C13B | 121.5 (3) |
C5A—C4A—H4A | 120.1 | N7B—C8B—C13B | 119.7 (3) |
C6A—C5A—C4A | 118.6 (3) | C8B—N9B—C10B | 118.1 (2) |
C6A—C5A—H5A | 120.7 | C8B—N9B—Co1 | 120.32 (19) |
C4A—C5A—H5A | 120.7 | C10B—N9B—Co1 | 121.3 (2) |
C5A—C6A—N1A | 122.6 (3) | N9B—C10B—C11B | 122.6 (3) |
C5A—C6A—H6A | 118.7 | N9B—C10B—H10B | 118.7 |
N1A—C6A—H6A | 118.7 | C11B—C10B—H10B | 118.7 |
C2A—N7A—C8A | 127.2 (3) | C10B—C11B—C12B | 118.9 (3) |
C2A—N7A—H7A | 112.7 | C10B—C11B—H11B | 120.5 |
C8A—N7A—H7A | 117.3 | C12B—C11B—H11B | 120.5 |
N9A—C8A—N7A | 119.9 (3) | C13B—C12B—C11B | 119.5 (3) |
N9A—C8A—C13A | 121.9 (3) | C13B—C12B—H12B | 120.3 |
N7A—C8A—C13A | 118.2 (3) | C11B—C12B—H12B | 120.3 |
C8A—N9A—C10A | 118.3 (3) | C12B—C13B—C8B | 119.1 (3) |
C8A—N9A—Co1 | 120.1 (2) | C12B—C13B—H13B | 120.5 |
C10A—N9A—Co1 | 120.9 (2) | C8B—C13B—H13B | 120.5 |
N9A—C10A—C11A | 122.2 (3) | O3—C1—O2 | 126.0 (3) |
N9A—C10A—H10A | 118.9 | O3—C1—O1 | 126.0 (3) |
C11A—C10A—H10A | 118.9 | O2—C1—O1 | 107.9 (3) |
C10A—C11A—C12A | 118.5 (3) | O3—C1—Co1 | 177.2 (3) |
C10A—C11A—H11A | 120.8 | O2—C1—Co1 | 53.86 (14) |
C12A—C11A—H11A | 120.8 | O1—C1—Co1 | 54.00 (14) |
C13A—C12A—C11A | 120.3 (3) | C1—O1—Co1 | 91.28 (17) |
C13A—C12A—H12A | 119.8 | C1—O2—Co1 | 91.90 (18) |
C11A—C12A—H12A | 119.8 | ||
N1A—C2A—N7A—C8A | 28.1 (4) | N1B—C2B—N7B—C8B | 28.0 (4) |
N9A—C8A—N7A—C2A | −27.6 (4) | N9B—C8B—N7B—C2B | −33.5 (4) |
D—H···A | D—H | H···A | D···A | D—H···A |
N7A—H7A···O2i | 0.86 | 2.08 | 2.876 (3) | 154 |
N7B—H7B···Br1 | 0.86 | 2.49 | 3.327 (2) | 164 |
C10B—H10B···O3ii | 0.95 | 2.34 | 3.225 (4) | 155 |
C5A—H5A···O1iii | 0.95 | 2.44 | 3.265 (4) | 146 |
C13A—H13A···O3i | 0.95 | 2.43 | 3.316 (4) | 156 |
C13B—H13B···Br1 | 0.95 | 2.83 | 3.623 (3) | 142 |
C5B—H5B···Br1iv | 0.95 | 2.86 | 3.741 (3) | 155 |
C4B—H4B···Br1v | 0.95 | 2.89 | 3.657 (3) | 139 |
Symmetry codes: (i) −x+2, −y+1, −z+1; (ii) x, y−1, z; (iii) −x+3/2, y−1/2, −z+1/2; (iv) x+1/2, −y+3/2, z+1/2; (v) −x+1, −y+2, −z+1. |
Experimental details
Crystal data | |
Chemical formula | [Co(CO3)(C10H9N3)2]Br |
Mr | 541.25 |
Crystal system, space group | Monoclinic, P21/n |
Temperature (K) | 130 |
a, b, c (Å) | 16.9605 (3), 7.4322 (1), 17.2590 (4) |
β (°) | 105.839 (2) |
V (Å3) | 2092.96 (7) |
Z | 4 |
Radiation type | Mo Kα |
µ (mm−1) | 2.77 |
Crystal size (mm) | 0.30 × 0.15 × 0.05 |
Data collection | |
Diffractometer | Oxford Diffraction Xcalibur E diffractometer |
Absorption correction | Multi-scan (CrysAlis PRO; Agilent Technologies, 2010) |
Tmin, Tmax | 0.710, 0.874 |
No. of measured, independent and observed [I > 2σ(I)] reflections | 29846, 4277, 3386 |
Rint | 0.064 |
(sin θ/λ)max (Å−1) | 0.625 |
Refinement | |
R[F2 > 2σ(F2)], wR(F2), S | 0.037, 0.080, 1.01 |
No. of reflections | 4277 |
No. of parameters | 289 |
H-atom treatment | H-atom parameters constrained |
Δρmax, Δρmin (e Å−3) | 0.79, −0.50 |
Computer programs: CrysAlis PRO (Agilent Technologies, 2010), SHELXS97 (Sheldrick, 2008), SHELXL97 (Sheldrick, 2008), ORTEP-3 for Windows (Farrugia, 1997) and Mercury (Macrae et al., 2006).
Co1—O2 | 1.901 (2) | Co1—N1A | 1.923 (2) |
Co1—O1 | 1.904 (2) | Co1—N1B | 1.925 (2) |
Co1—N9B | 1.919 (2) | Co1—N9A | 1.933 (2) |
O2—Co1—O1 | 68.96 (9) | N9B—Co1—N1B | 88.48 (10) |
O2—Co1—N9B | 169.04 (10) | N1A—Co1—N1B | 174.69 (10) |
O1—Co1—N9B | 100.10 (10) | O2—Co1—N9A | 96.62 (10) |
O2—Co1—N1A | 88.42 (10) | O1—Co1—N9A | 165.55 (10) |
O1—Co1—N1A | 88.32 (10) | N9B—Co1—N9A | 94.32 (10) |
N9B—Co1—N1A | 92.01 (10) | N1A—Co1—N9A | 90.42 (10) |
O2—Co1—N1B | 90.10 (9) | N1B—Co1—N9A | 94.81 (10) |
O1—Co1—N1B | 86.40 (9) |
D—H···A | D—H | H···A | D···A | D—H···A |
N7A—H7A···O2i | 0.86 | 2.08 | 2.876 (3) | 154 |
N7B—H7B···Br1 | 0.86 | 2.49 | 3.327 (2) | 164 |
C10B—H10B···O3ii | 0.95 | 2.34 | 3.225 (4) | 155 |
C5A—H5A···O1iii | 0.95 | 2.44 | 3.265 (4) | 146 |
C13A—H13A···O3i | 0.95 | 2.43 | 3.316 (4) | 156 |
C13B—H13B···Br1 | 0.95 | 2.83 | 3.623 (3) | 142 |
C5B—H5B···Br1iv | 0.95 | 2.86 | 3.741 (3) | 155 |
C4B—H4B···Br1v | 0.95 | 2.89 | 3.657 (3) | 139 |
Symmetry codes: (i) −x+2, −y+1, −z+1; (ii) x, y−1, z; (iii) −x+3/2, y−1/2, −z+1/2; (iv) x+1/2, −y+3/2, z+1/2; (v) −x+1, −y+2, −z+1. |
References
Agilent Technologies (2010). CrysAlis PRO. Agilent Technologies, Yarnton, Oxfordshire, England. Google Scholar
Castillo, O., Luque, A., De la Pinta, N. & Román, P. (2011). Acta Cryst. E67, e15. Web of Science CrossRef IUCr Journals Google Scholar
Farrugia, L. J. (1997). J. Appl. Cryst. 30, 565. CrossRef IUCr Journals Google Scholar
Macrae, C. F., Edgington, P. R., McCabe, P., Pidcock, E., Shields, G. P., Taylor, R., Towler, M. & van de Streek, J. (2006). J. Appl. Cryst. 39, 453–457. Web of Science CrossRef CAS IUCr Journals Google Scholar
Sheldrick, G. M. (2008). Acta Cryst. A64, 112–122. Web of Science CrossRef CAS IUCr Journals Google Scholar
Williams, A. F., Bocquet, B. & Bernardinelli, G. (1987). Acta Cryst. C43, 883–885. CSD CrossRef CAS Web of Science IUCr Journals 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.
The title compound (Fig. 1) was obtained as a byproduct in the preparation of [Co(Hdpa)2(apo)]Br from CoBr2, where apo is 2-acetylphenolate ion and Hdpa is di-2-pyridylamine. The chelating carbonate ligand in the coordination cation was identified from its geometrical parameters, namely the two bonds of 1.325 (4) and 1.341 (4) Å indicated single C—O bonds and the bond length of 1.183 (4) Å pointed to a C=O bond. The presence of the carbonate anion in the studied compound concurred with the +3 oxidation state of the cobalt atom. The CoIII atom shows a distorted octahedral coordination that is completed by four N atoms of the two chelating di-2-pyridylamine ligands and two O atoms of the chelating carbonate anion (Table 1). The bidentate Hdpa ligands chelate the CoIII atom to form two six-membered rings with the N1—Co1—N9 bite angles of 90.42 (10) and 88.48 (10)°, in ligand A and B respectively. The diimine ligands are non-planar with the N(py)—C—N(H)—C torsion angles of 28.1 (4) and -27.6 (4)° in the A ligand and 28.0 (4) and -33.5 (4)° in the B Hdpa ligand.
The coordination cation has approximate C2 symmetry with a pseudo-twofold axis passing through atoms O3, C1 and Co1. It binds one Br- anion via a N—H···Br- hydrogen bond and the ionic pair thus formed assembles into a dimer, via N—H···O hydrogen bonds (Fig. 2, Table 2), centered about an inversion center. These dimers are further connected via a C10B—H10B···O3(x, y - 1, z) interaction into chains extended along [010] and the chains are joined via a set of C—H···O and C—H···Br- interactions into a three-dimensional network (Table 2).
Interesingly, similar interactions between the coordination cation and the anion, and the formation of dimers of the ionic pairs, was also observed in the nitrate and perchlorate salts of the same cation (Castillo et al., 2011; Williams et al., 1987). Moreover, the crystals of the nitrate salt and the title bromide salt are to a large extent isostructural.