metal-organic compounds
Aqua(2,9-dimethyl-1,10-phenanthroline-κ2N,N′)(formato-κ2O,O′)(formato-κO)cobalt(II) monohydrate
aDepartment of Chemistry, Huzhou Teachers College, Huzhou Key Laboratory Base of Novel Functional Materials, Huzhou, Zhejiang 313000, People's Republic of China
*Correspondence e-mail: shengliangni@163.com
The 2)2(C14H12N2)(H2O)]·H2O, contains a mononuclear complex molecule hydrogen bonded to a lattice water molecule. The CoII cation is in a distorted octahedral coordination environment defined by the two N atoms of the 2,9-dimethyl-1,10-phenanthroline ligand and four O atoms. Two of these are from a chelating formate anion, one from a monodentate formate and the last from an aqua ligand. In the crystal, molecules are connected by O—H⋯O hydrogen bonds, forming double chains along [100] with the 2,9-dimethyl-1,10-phenanthroline ligands pointing outwards from each chain. These chains are further linked into layers parallel to (011) by inter-chain π–π stacking interactions with centroid–centroid distances of 3.61 (1) Å.
of the title compound, [Co(HCORelated literature
For background to the formation and applications of supramolecular metal complexes, see: Moulton & Zaworotko (2001); Aakeroy & Seddon (1993). For related structures, see: Cai et al. (2008); Chen et al. (2009).
Experimental
Crystal data
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Refinement
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Data collection: XSCANS (Siemens, 1996); cell XSCANS; data reduction: XSCANS; program(s) used to solve structure: SHELXS97 (Sheldrick, 2008); program(s) used to refine structure: SHELXL97 (Sheldrick, 2008); molecular graphics: SHELXTL (Sheldrick, 2008) and DIAMOND (Brandenburg, 2006); software used to prepare material for publication: SHELXL97.
Supporting information
https://doi.org/10.1107/S1600536810050051/sj5068sup1.cif
contains datablocks global, I. DOI:Structure factors: contains datablock I. DOI: https://doi.org/10.1107/S1600536810050051/sj5068Isup2.hkl
Dropwise addition of 2.0 ml of 1.0 M aqueous Na2CO3 to a stirred aqueous solution of CoCl2.6H2O (0.2380 g, 1.0 mmol) in 5.0 ml H2O produced a pink precipitate, Co(OH)2–2x (CO3)x.yH2O, which was centrifuged and washed with water until no Cl- anions were detected in the supernatant. The precipitate was added to a stirred aqueous methanolic solution of 2,9-dimethyl-1,10-phenanthroline in 30 ml CH3OH–H2O (1/1 v/v). 1.77 ml of 1.0 M aqueous formic acid was added dropwise and stirred continuously until the pink precipitate dissolved. The pink solution (pH = 4.06) was allowed to stand at room temperature. Slow evaporation over several days afforded pink block shaped crystals. Yield:45% based on the initial CoCl2.6H2O input.
All H-atoms bound to C were positioned geometrically and refined using a riding model with d(C-H) = 0.93Å, Uiso=1.2Ueq (C) for aromatic 0.93Å, Uiso = 1.2Ueq (C) for CH and 0.96Å, Uiso = 1.5Ueq (C) for CH3 atoms. H atoms attached to O atoms were found in a difference Fourier synthesis and were refined using a riding model, with the O–H distances fixed as initially found and with Uiso(H) values set at 1.5 Ueq(O).
In the past decade, a variety of supramolecular architectures based on non–covalent intermolecular interactions such as hydrogen bonding, van der Walls forces and π–π interactions have been achieved by using transition metal centers and organic ligands due to their possible intriguing structural topologies and potential applications in optics, catalysis, ion exchange, gas storage, and the molecular–based magnetic materials (Aakeroy & Seddon, 1993). Carboxylate ligands have been actively utilized as construction units to obtain many supramolecular complexes (Moulton & Zaworotko, 2001) Herein, we are interested in self–assemblies of CoII ions and 2,9-dimethyl-1,10-phenanthroline with formic acid, leading to the successful preparation of the complex [Co(H2O)(C14H12N2)(HCO2)2].H2O.
The
of the title compound consists of one CoII ion, a H2O molecule, a 2,9-dimethyl-1,10-phenanthroline molecule, one O,O'–chelated formate anion and another coordinated formate anion, and one lattice H2O molecule (Fig. 1). Each CoII atom is coordinated two N atoms from one 2,9-dimethyl-1,10-phenanthroline, three O atoms from two formate anions and one aqua ligand to complete a distorted octahedral CoN2O4 chromophore. The Co–N/O distances of 2.055 (2)–2.143 (2) Å, Table 1, fall within the normal range (Cai et al., 2008, Chen et al., 2009), both the cisoid and transoid bond angles in the range 59.90 (8)–112.35 (7) Å and 167.31 (7)–176.05 (6) Å, respectively, indicating that the octahedral CoN2O4 geometry is a highly distorted one. For the two formate anions, the angle (O2–C15–O3, 122.6 (3)°) in the chelated formate is smaller than that in the anion that binds in a monodentate fashion (O4–C16–O5, 128.8 (2)°). The 2,9-dimethyl-1,10-phenanthroline ligand is almost coplanar with a mean square deviation 0.0163 Å. The O6 solvent water molecule is not coordinated to Co atom with the distance between the cobalt and water oxygen atoms of 4.800 (2) Å. However it is linked to the complex molecule in the by an O6—H6B—O3 hydrogen bond.The molecules are connected by (O1–H1B···O5#1, O1–H1C···O6#2 and O6–H6C···O4#3) hydrogen bonds, Table 1, to form one-dimensional double chains along [100] with 2,9-dimethyl-1,10-phenanthroline orientating outwards. The resulting chains are further linked into two-dimensional layers parallel to (011) by interchain π–π stacking interactions with centroid – centroid distances 3.61 (1) Å), Fig. 2.
For background to the formation and applications of supramolecular metal complexes, see: Moulton & Zaworotko (2001); Aakeroy & Seddon (1993). For related structures, see: Cai et al. (2008); Chen et al. (2009).
Data collection: XSCANS (Siemens, 1996); cell
XSCANS (Siemens, 1996); data reduction: XSCANS (Siemens, 1996); program(s) used to solve structure: SHELXS97 (Sheldrick, 2008); program(s) used to refine structure: SHELXL97 (Sheldrick, 2008); molecular graphics: SHELXTL (Sheldrick, 2008) and DIAMOND (Brandenburg, 2006); software used to prepare material for publication: SHELXL97 (Sheldrick, 2008).[Co(HCO2)2(C14H12N2)(H2O)]·H2O | Z = 2 |
Mr = 393.25 | F(000) = 406 |
Triclinic, P1 | Dx = 1.544 Mg m−3 |
Hall symbol: -P 1 | Mo Kα radiation, λ = 0.71073 Å |
a = 7.4220 (15) Å | Cell parameters from 25 reflections |
b = 10.441 (2) Å | θ = 5.0–12.5° |
c = 11.419 (2) Å | µ = 1.05 mm−1 |
α = 82.92 (3)° | T = 295 K |
β = 81.62 (3)° | Block, pink |
γ = 76.01 (3)° | 0.16 × 0.10 × 0.08 mm |
V = 845.9 (3) Å3 |
Bruker P4 diffractometer | 3362 reflections with I > 2σ(I) |
Radiation source: fine-focus sealed tube | Rint = 0.017 |
Graphite monochromator | θmax = 27.5°, θmin = 1.8° |
θ/2θ scans | h = −1→9 |
Absorption correction: ψ scan (XSCANS; Siemens, 1996) | k = −13→13 |
Tmin = 0.880, Tmax = 0.912 | l = −14→14 |
4797 measured reflections | 3 standard reflections every 97 reflections |
3897 independent reflections | intensity decay: none |
Refinement on F2 | Secondary atom site location: difference Fourier map |
Least-squares matrix: full | Hydrogen site location: inferred from neighbouring sites |
R[F2 > 2σ(F2)] = 0.035 | H-atom parameters constrained |
wR(F2) = 0.098 | w = 1/[σ2(Fo2) + (0.0543P)2 + 0.2279P] where P = (Fo2 + 2Fc2)/3 |
S = 1.03 | (Δ/σ)max < 0.001 |
3897 reflections | Δρmax = 0.37 e Å−3 |
227 parameters | Δρmin = −0.34 e Å−3 |
6 restraints | Extinction correction: SHELXL97 (Sheldrick, 2008), Fc*=kFc[1+0.001xFc2λ3/sin(2θ)]-1/4 |
Primary atom site location: structure-invariant direct methods | Extinction coefficient: 0.002468 |
[Co(HCO2)2(C14H12N2)(H2O)]·H2O | γ = 76.01 (3)° |
Mr = 393.25 | V = 845.9 (3) Å3 |
Triclinic, P1 | Z = 2 |
a = 7.4220 (15) Å | Mo Kα radiation |
b = 10.441 (2) Å | µ = 1.05 mm−1 |
c = 11.419 (2) Å | T = 295 K |
α = 82.92 (3)° | 0.16 × 0.10 × 0.08 mm |
β = 81.62 (3)° |
Bruker P4 diffractometer | 3362 reflections with I > 2σ(I) |
Absorption correction: ψ scan (XSCANS; Siemens, 1996) | Rint = 0.017 |
Tmin = 0.880, Tmax = 0.912 | 3 standard reflections every 97 reflections |
4797 measured reflections | intensity decay: none |
3897 independent reflections |
R[F2 > 2σ(F2)] = 0.035 | 6 restraints |
wR(F2) = 0.098 | H-atom parameters constrained |
S = 1.03 | Δρmax = 0.37 e Å−3 |
3897 reflections | Δρmin = −0.34 e Å−3 |
227 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 | ||
Co | 0.27534 (4) | 0.17941 (2) | 0.27175 (2) | 0.03146 (11) | |
N1 | 0.2555 (2) | 0.25976 (17) | 0.09313 (14) | 0.0331 (3) | |
N2 | 0.2662 (2) | 0.38360 (15) | 0.28646 (14) | 0.0305 (3) | |
O1 | 0.5639 (2) | 0.15052 (15) | 0.24594 (14) | 0.0452 (4) | |
H1B | 0.6115 | 0.2032 | 0.2767 | 0.068* | |
H1C | 0.6274 | 0.0738 | 0.2635 | 0.068* | |
O2 | 0.3174 (3) | −0.03795 (17) | 0.29174 (18) | 0.0637 (5) | |
O3 | 0.2798 (3) | 0.07298 (17) | 0.44656 (15) | 0.0551 (4) | |
O4 | −0.0089 (2) | 0.19581 (17) | 0.29267 (15) | 0.0474 (4) | |
O5 | −0.2919 (2) | 0.30672 (19) | 0.35861 (16) | 0.0539 (4) | |
O6 | 0.1515 (3) | 0.06203 (18) | 0.69063 (17) | 0.0593 (5) | |
H6B | 0.1849 | 0.0670 | 0.6158 | 0.089* | |
H6C | 0.0747 | 0.0117 | 0.7018 | 0.089* | |
C1 | 0.2454 (3) | 0.1974 (2) | −0.0004 (2) | 0.0452 (5) | |
C2 | 0.2397 (4) | 0.2645 (3) | −0.1146 (2) | 0.0577 (7) | |
H2A | 0.2335 | 0.2194 | −0.1787 | 0.069* | |
C3 | 0.2432 (4) | 0.3945 (3) | −0.1321 (2) | 0.0576 (7) | |
H3A | 0.2416 | 0.4381 | −0.2081 | 0.069* | |
C4 | 0.2491 (3) | 0.4633 (2) | −0.03500 (19) | 0.0448 (5) | |
C5 | 0.2526 (4) | 0.6003 (3) | −0.0464 (2) | 0.0587 (7) | |
H5A | 0.2480 | 0.6482 | −0.1206 | 0.070* | |
C6 | 0.2625 (4) | 0.6611 (2) | 0.0489 (3) | 0.0575 (7) | |
H6A | 0.2655 | 0.7503 | 0.0395 | 0.069* | |
C7 | 0.2686 (3) | 0.5909 (2) | 0.1641 (2) | 0.0436 (5) | |
C8 | 0.2817 (4) | 0.6496 (2) | 0.2655 (2) | 0.0543 (6) | |
H8A | 0.2870 | 0.7383 | 0.2597 | 0.065* | |
C9 | 0.2868 (4) | 0.5763 (2) | 0.3717 (2) | 0.0504 (6) | |
H9A | 0.2964 | 0.6150 | 0.4390 | 0.060* | |
C10 | 0.2776 (3) | 0.4427 (2) | 0.38166 (18) | 0.0367 (4) | |
C11 | 0.2631 (3) | 0.45609 (18) | 0.17911 (18) | 0.0320 (4) | |
C12 | 0.2558 (3) | 0.39041 (19) | 0.07673 (17) | 0.0330 (4) | |
C13 | 0.2345 (5) | 0.0557 (3) | 0.0209 (3) | 0.0657 (8) | |
H13A | 0.2420 | 0.0262 | 0.1034 | 0.099* | |
H13B | 0.3364 | 0.0031 | −0.0266 | 0.099* | |
H13C | 0.1181 | 0.0466 | −0.0004 | 0.099* | |
C14 | 0.2786 (4) | 0.3641 (3) | 0.5002 (2) | 0.0500 (6) | |
H14A | 0.2716 | 0.2752 | 0.4914 | 0.075* | |
H14B | 0.1729 | 0.4044 | 0.5531 | 0.075* | |
H14C | 0.3918 | 0.3622 | 0.5324 | 0.075* | |
C15 | 0.3054 (5) | −0.0333 (3) | 0.4003 (3) | 0.0628 (7) | |
H15 | 0.3158 | −0.1120 | 0.4494 | 0.075* | |
C16 | −0.1206 (3) | 0.2801 (2) | 0.3492 (2) | 0.0467 (5) | |
H16 | −0.0681 | 0.3306 | 0.3905 | 0.056* |
U11 | U22 | U33 | U12 | U13 | U23 | |
Co | 0.03515 (17) | 0.02810 (15) | 0.03361 (16) | −0.01129 (10) | −0.00462 (10) | −0.00368 (10) |
N1 | 0.0329 (8) | 0.0380 (9) | 0.0320 (8) | −0.0120 (7) | −0.0051 (6) | −0.0082 (6) |
N2 | 0.0298 (8) | 0.0298 (8) | 0.0343 (8) | −0.0098 (6) | −0.0029 (6) | −0.0078 (6) |
O1 | 0.0391 (8) | 0.0407 (8) | 0.0572 (10) | −0.0071 (6) | −0.0124 (7) | −0.0062 (7) |
O2 | 0.0943 (15) | 0.0355 (9) | 0.0658 (12) | −0.0211 (9) | −0.0134 (11) | −0.0051 (8) |
O3 | 0.0761 (12) | 0.0468 (9) | 0.0447 (9) | −0.0196 (9) | −0.0124 (8) | 0.0042 (7) |
O4 | 0.0358 (8) | 0.0539 (9) | 0.0561 (10) | −0.0159 (7) | −0.0003 (7) | −0.0135 (8) |
O5 | 0.0345 (8) | 0.0684 (11) | 0.0627 (11) | −0.0125 (8) | −0.0044 (7) | −0.0209 (9) |
O6 | 0.0680 (12) | 0.0556 (10) | 0.0575 (11) | −0.0154 (9) | −0.0121 (9) | −0.0099 (8) |
C1 | 0.0466 (12) | 0.0566 (14) | 0.0382 (11) | −0.0176 (10) | −0.0055 (9) | −0.0143 (10) |
C2 | 0.0650 (16) | 0.0796 (19) | 0.0350 (12) | −0.0207 (14) | −0.0096 (11) | −0.0173 (12) |
C3 | 0.0606 (16) | 0.0793 (19) | 0.0319 (11) | −0.0174 (14) | −0.0071 (11) | 0.0033 (11) |
C4 | 0.0424 (12) | 0.0518 (13) | 0.0381 (11) | −0.0114 (10) | −0.0052 (9) | 0.0064 (9) |
C5 | 0.0621 (16) | 0.0559 (15) | 0.0535 (14) | −0.0178 (12) | −0.0079 (12) | 0.0222 (12) |
C6 | 0.0622 (16) | 0.0355 (12) | 0.0705 (17) | −0.0141 (11) | −0.0053 (13) | 0.0146 (11) |
C7 | 0.0420 (12) | 0.0304 (10) | 0.0580 (14) | −0.0110 (9) | −0.0009 (10) | −0.0030 (9) |
C8 | 0.0588 (15) | 0.0331 (11) | 0.0744 (18) | −0.0166 (10) | 0.0014 (13) | −0.0161 (11) |
C9 | 0.0512 (13) | 0.0456 (12) | 0.0609 (15) | −0.0175 (10) | 0.0029 (11) | −0.0282 (11) |
C10 | 0.0333 (10) | 0.0413 (11) | 0.0392 (10) | −0.0118 (8) | −0.0012 (8) | −0.0153 (8) |
C11 | 0.0279 (9) | 0.0286 (9) | 0.0398 (10) | −0.0072 (7) | −0.0037 (8) | −0.0028 (7) |
C12 | 0.0291 (9) | 0.0367 (10) | 0.0332 (10) | −0.0089 (8) | −0.0042 (7) | −0.0003 (8) |
C13 | 0.088 (2) | 0.0612 (17) | 0.0608 (16) | −0.0293 (15) | −0.0094 (15) | −0.0278 (13) |
C14 | 0.0568 (14) | 0.0630 (15) | 0.0366 (11) | −0.0198 (12) | −0.0086 (10) | −0.0140 (10) |
C15 | 0.086 (2) | 0.0389 (13) | 0.0647 (17) | −0.0232 (13) | −0.0157 (15) | 0.0143 (12) |
C16 | 0.0392 (12) | 0.0604 (14) | 0.0470 (12) | −0.0200 (11) | −0.0036 (10) | −0.0151 (11) |
Co—O4 | 2.0552 (16) | C3—H3A | 0.9300 |
Co—O1 | 2.0710 (17) | C4—C12 | 1.404 (3) |
Co—N1 | 2.1194 (18) | C4—C5 | 1.426 (4) |
Co—N2 | 2.1430 (16) | C5—C6 | 1.345 (4) |
Co—O3 | 2.1622 (18) | C5—H5A | 0.9300 |
Co—O2 | 2.2024 (17) | C6—C7 | 1.426 (4) |
Co—C15 | 2.488 (3) | C6—H6A | 0.9300 |
N1—C1 | 1.337 (3) | C7—C8 | 1.401 (3) |
N1—C12 | 1.354 (3) | C7—C11 | 1.406 (3) |
N2—C10 | 1.337 (2) | C8—C9 | 1.353 (4) |
N2—C11 | 1.359 (3) | C8—H8A | 0.9300 |
O1—H1B | 0.8536 | C9—C10 | 1.403 (3) |
O1—H1C | 0.8425 | C9—H9A | 0.9300 |
O2—C15 | 1.236 (3) | C10—C14 | 1.494 (3) |
O3—C15 | 1.249 (3) | C11—C12 | 1.440 (3) |
O4—C16 | 1.229 (3) | C13—H13A | 0.9600 |
O5—C16 | 1.225 (3) | C13—H13B | 0.9600 |
O6—H6B | 0.8529 | C13—H13C | 0.9600 |
O6—H6C | 0.8512 | C14—H14A | 0.9600 |
C1—C2 | 1.404 (4) | C14—H14B | 0.9600 |
C1—C13 | 1.489 (4) | C14—H14C | 0.9600 |
C2—C3 | 1.353 (4) | C15—H15 | 0.9300 |
C2—H2A | 0.9300 | C16—H16 | 0.9300 |
C3—C4 | 1.405 (4) | ||
O4—Co—O1 | 176.05 (6) | C6—C5—C4 | 120.8 (2) |
O4—Co—N1 | 88.20 (7) | C6—C5—H5A | 119.6 |
O1—Co—N1 | 91.40 (7) | C4—C5—H5A | 119.6 |
O4—Co—N2 | 96.90 (7) | C5—C6—C7 | 121.1 (2) |
O1—Co—N2 | 86.88 (7) | C5—C6—H6A | 119.5 |
N1—Co—N2 | 79.03 (7) | C7—C6—H6A | 119.5 |
O4—Co—O3 | 87.65 (8) | C8—C7—C11 | 117.2 (2) |
O1—Co—O3 | 92.21 (8) | C8—C7—C6 | 123.0 (2) |
N1—Co—O3 | 171.25 (6) | C11—C7—C6 | 119.8 (2) |
N2—Co—O3 | 109.13 (7) | C9—C8—C7 | 119.5 (2) |
O4—Co—O2 | 89.29 (8) | C9—C8—H8A | 120.3 |
O1—Co—O2 | 87.23 (8) | C7—C8—H8A | 120.3 |
N1—Co—O2 | 112.35 (7) | C8—C9—C10 | 120.8 (2) |
N2—Co—O2 | 167.32 (7) | C8—C9—H9A | 119.6 |
O3—Co—O2 | 59.90 (8) | C10—C9—H9A | 119.6 |
O4—Co—C15 | 88.17 (9) | N2—C10—C9 | 121.1 (2) |
O1—Co—C15 | 89.74 (9) | N2—C10—C14 | 118.73 (18) |
N1—Co—C15 | 141.97 (9) | C9—C10—C14 | 120.1 (2) |
N2—Co—C15 | 138.97 (9) | N2—C11—C7 | 122.92 (19) |
O3—Co—C15 | 30.14 (9) | N2—C11—C12 | 117.94 (16) |
O2—Co—C15 | 29.76 (8) | C7—C11—C12 | 119.14 (19) |
C1—N1—C12 | 118.95 (18) | N1—C12—C4 | 122.82 (19) |
C1—N1—Co | 128.10 (15) | N1—C12—C11 | 117.96 (17) |
C12—N1—Co | 112.95 (13) | C4—C12—C11 | 119.22 (19) |
C10—N2—C11 | 118.44 (17) | C1—C13—H13A | 109.5 |
C10—N2—Co | 129.34 (14) | C1—C13—H13B | 109.5 |
C11—N2—Co | 111.99 (12) | H13A—C13—H13B | 109.5 |
Co—O1—H1B | 117.2 | C1—C13—H13C | 109.5 |
Co—O1—H1C | 117.6 | H13A—C13—H13C | 109.5 |
H1B—O1—H1C | 105.8 | H13B—C13—H13C | 109.5 |
C15—O2—Co | 88.00 (15) | C10—C14—H14A | 109.5 |
C15—O3—Co | 89.50 (16) | C10—C14—H14B | 109.5 |
C16—O4—Co | 123.21 (15) | H14A—C14—H14B | 109.5 |
H6B—O6—H6C | 104.7 | C10—C14—H14C | 109.5 |
N1—C1—C2 | 121.0 (2) | H14A—C14—H14C | 109.5 |
N1—C1—C13 | 118.0 (2) | H14B—C14—H14C | 109.5 |
C2—C1—C13 | 121.0 (2) | O2—C15—O3 | 122.6 (2) |
C3—C2—C1 | 120.4 (2) | O2—C15—Co | 62.23 (13) |
C3—C2—H2A | 119.8 | O3—C15—Co | 60.36 (13) |
C1—C2—H2A | 119.8 | O2—C15—H15 | 118.7 |
C2—C3—C4 | 119.8 (2) | O3—C15—H15 | 118.7 |
C2—C3—H3A | 120.1 | Co—C15—H15 | 179.0 |
C4—C3—H3A | 120.1 | O5—C16—O4 | 128.8 (2) |
C12—C4—C3 | 117.0 (2) | O5—C16—H16 | 115.6 |
C12—C4—C5 | 120.0 (2) | O4—C16—H16 | 115.6 |
C3—C4—C5 | 123.0 (2) |
D—H···A | D—H | H···A | D···A | D—H···A |
O1—H1B···O5i | 0.85 | 1.84 | 2.688 | 173 |
O1—H1C···O6ii | 0.84 | 1.98 | 2.774 | 156 |
O6—H6B···O3 | 0.85 | 1.96 | 2.809 | 176 |
O6—H6C···O4iii | 0.85 | 2.33 | 3.098 | 151 |
Symmetry codes: (i) x+1, y, z; (ii) −x+1, −y, −z+1; (iii) −x, −y, −z+1. |
Experimental details
Crystal data | |
Chemical formula | [Co(HCO2)2(C14H12N2)(H2O)]·H2O |
Mr | 393.25 |
Crystal system, space group | Triclinic, P1 |
Temperature (K) | 295 |
a, b, c (Å) | 7.4220 (15), 10.441 (2), 11.419 (2) |
α, β, γ (°) | 82.92 (3), 81.62 (3), 76.01 (3) |
V (Å3) | 845.9 (3) |
Z | 2 |
Radiation type | Mo Kα |
µ (mm−1) | 1.05 |
Crystal size (mm) | 0.16 × 0.10 × 0.08 |
Data collection | |
Diffractometer | Bruker P4 |
Absorption correction | ψ scan (XSCANS; Siemens, 1996) |
Tmin, Tmax | 0.880, 0.912 |
No. of measured, independent and observed [I > 2σ(I)] reflections | 4797, 3897, 3362 |
Rint | 0.017 |
(sin θ/λ)max (Å−1) | 0.650 |
Refinement | |
R[F2 > 2σ(F2)], wR(F2), S | 0.035, 0.098, 1.03 |
No. of reflections | 3897 |
No. of parameters | 227 |
No. of restraints | 6 |
H-atom treatment | H-atom parameters constrained |
Δρmax, Δρmin (e Å−3) | 0.37, −0.34 |
Computer programs: XSCANS (Siemens, 1996), SHELXS97 (Sheldrick, 2008), SHELXL97 (Sheldrick, 2008), SHELXTL (Sheldrick, 2008) and DIAMOND (Brandenburg, 2006).
Co—O4 | 2.0552 (16) | Co—N2 | 2.1430 (16) |
Co—O1 | 2.0710 (17) | Co—O3 | 2.1622 (18) |
Co—N1 | 2.1194 (18) | Co—O2 | 2.2024 (17) |
D—H···A | D—H | H···A | D···A | D—H···A |
O1—H1B···O5i | 0.854 | 1.838 | 2.688 | 173 |
O1—H1C···O6ii | 0.843 | 1.980 | 2.774 | 156 |
O6—H6B···O3 | 0.853 | 1.957 | 2.809 | 176 |
O6—H6C···O4iii | 0.851 | 2.325 | 3.098 | 151 |
Symmetry codes: (i) x+1, y, z; (ii) −x+1, −y, −z+1; (iii) −x, −y, −z+1. |
Acknowledgements
This project was supported by the Foundation of the Education Department of Zhejiang Province (ky23022) and the Huzhou Municipal Foundation of Science and Technology (2006YG21).
References
Aakeroy, C. B. & Seddon, K. R. (1993). Chem. Soc. Rev. 22, 397–407. CrossRef CAS Web of Science Google Scholar
Brandenburg, K. (2006). DIAMOND. Crystal Impact GbR, Bonn, Germany. Google Scholar
Cai, T. J., Jiang, W. J., Deng, Q., Peng, Z. S., Long, Y. F., Liu, H. & Liu, M. L. (2008). J. Coord. Chem. 61, 3245–3250. Web of Science CSD CrossRef CAS Google Scholar
Chen, X.-D., Chen, H.-X., Li, Z.-S., Zhang, H.-H. & Sun, B.-W. (2009). Acta Cryst. E65, m997. Web of Science CSD CrossRef IUCr Journals Google Scholar
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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.
In the past decade, a variety of supramolecular architectures based on non–covalent intermolecular interactions such as hydrogen bonding, van der Walls forces and π–π interactions have been achieved by using transition metal centers and organic ligands due to their possible intriguing structural topologies and potential applications in optics, catalysis, ion exchange, gas storage, and the molecular–based magnetic materials (Aakeroy & Seddon, 1993). Carboxylate ligands have been actively utilized as construction units to obtain many supramolecular complexes (Moulton & Zaworotko, 2001) Herein, we are interested in self–assemblies of CoII ions and 2,9-dimethyl-1,10-phenanthroline with formic acid, leading to the successful preparation of the complex [Co(H2O)(C14H12N2)(HCO2)2].H2O.
The asymmetric unit of the title compound consists of one CoII ion, a H2O molecule, a 2,9-dimethyl-1,10-phenanthroline molecule, one O,O'–chelated formate anion and another coordinated formate anion, and one lattice H2O molecule (Fig. 1). Each CoII atom is coordinated two N atoms from one 2,9-dimethyl-1,10-phenanthroline, three O atoms from two formate anions and one aqua ligand to complete a distorted octahedral CoN2O4 chromophore. The Co–N/O distances of 2.055 (2)–2.143 (2) Å, Table 1, fall within the normal range (Cai et al., 2008, Chen et al., 2009), both the cisoid and transoid bond angles in the range 59.90 (8)–112.35 (7) Å and 167.31 (7)–176.05 (6) Å, respectively, indicating that the octahedral CoN2O4 geometry is a highly distorted one. For the two formate anions, the angle (O2–C15–O3, 122.6 (3)°) in the chelated formate is smaller than that in the anion that binds in a monodentate fashion (O4–C16–O5, 128.8 (2)°). The 2,9-dimethyl-1,10-phenanthroline ligand is almost coplanar with a mean square deviation 0.0163 Å. The O6 solvent water molecule is not coordinated to Co atom with the distance between the cobalt and water oxygen atoms of 4.800 (2) Å. However it is linked to the complex molecule in the asymmetric unit by an O6—H6B—O3 hydrogen bond.
The molecules are connected by (O1–H1B···O5#1, O1–H1C···O6#2 and O6–H6C···O4#3) hydrogen bonds, Table 1, to form one-dimensional double chains along [100] with 2,9-dimethyl-1,10-phenanthroline orientating outwards. The resulting chains are further linked into two-dimensional layers parallel to (011) by interchain π–π stacking interactions with centroid – centroid distances 3.61 (1) Å), Fig. 2.