metal-organic compounds
Poly[μ6-adipato-diaquadi-μ2-oxalato-digadolinium(III)]
aSchool of Materials & Chemical Engineering, Jiangxi University of Science and Technology, Ganzhou 341000, People's Republic of China
*Correspondence e-mail: jxlzfeng@yahoo.com.cn
In the centrosymmetric title compound, [Gd2(C6H8O4)(C2O4)2(H2O)2]n, the Gd3+ cations are each coordinated by nine O atoms, three from adipate anions, two from oxalate anions and one from an aqua ligand, completing a distorted tricapped trigonal-prismatic geometry. These tricapped trigonal prisms are bridged by the adipate ligands, generating layers lying parallel to (010). The coordination polymer layers are linked into a three-dimensional framework by the rigid oxalate ligands. The adipate and oxalate ions are all located on centers of inversion. A part of the adipate anion is disordered over two positions in a 0.75:0.25 ratio.
Related literature
For structures involving adipate ligands and lanthanide ions, see: Dimos et al. (2002). For structures involving oxalate ligands and lanthanide ions, see: Trombe & Mohanu (2004).
Experimental
Crystal data
|
Refinement
|
Data collection: APEX2 (Bruker, 2004); cell SAINT (Bruker, 2004); data reduction: SAINT; program(s) used to solve structure: SHELXS97 (Sheldrick, 2008); program(s) used to refine structure: SHELXL97 (Sheldrick, 2008); molecular graphics: SHELXTL (Sheldrick, 2008); software used to prepare material for publication: SHELXTL.
Supporting information
10.1107/S1600536810036111/su2209sup1.cif
contains datablocks I, global. DOI:Structure factors: contains datablock I. DOI: 10.1107/S1600536810036111/su2209Isup2.hkl
A mixture of GdCl3.6H2O(1.00 mmol, 0.36 g), oxalic acid (0.50 mmol, 0.05 g), adipic acid (0.50 mmol, 0.07 g), NaOH (2.00 mmol, 0.08 g) and H2O (10.0 ml) was heated in a 23 ml stainless steel reactor with a Teflon liner at 443 K for 48 h. On cooling a small amount of colorless plate-like crystals were obtained.They were filtered off and washed with water and acetone.
Atom C3 of the adipate anion is positionally disordered (C3A and C3B) and these atoms were refined with occupancies of 0.75/0.25. The water H-atoms were located in difference Fourier maps and were refined with distance restraints: O—H distance of 0.84 (2) Å) and Uiso(H) = 1.5Ueq(O). The C-bound atoms were included in calculated positions and treated as riding atoms: C–H = 0.97 Å and Uiso(H) = 1.2Ueq(C). The highest density peak and deepest hole are located at 0.97 Å and 0.89 Å, respectively, from the Gd atom.
Data collection: APEX2 (Bruker, 2004); cell
SAINT (Bruker, 2004); data reduction: SAINT (Bruker, 2004); program(s) used to solve structure: SHELXS97 (Sheldrick, 2008); program(s) used to refine structure: SHELXL97 (Sheldrick, 2008); molecular graphics: SHELXTL (Sheldrick, 2008); software used to prepare material for publication: SHELXTL (Sheldrick, 2008).[Gd2(C6H8O4)(C2O4)2(H2O)2] | Z = 1 |
Mr = 670.70 | F(000) = 312 |
Triclinic, P1 | Dx = 3.028 Mg m−3 |
Hall symbol: -P 1 | Mo Kα radiation, λ = 0.71073 Å |
a = 6.815 (4) Å | Cell parameters from 238 reflections |
b = 6.982 (4) Å | θ = 2.6–28.3° |
c = 8.997 (7) Å | µ = 9.02 mm−1 |
α = 104.759 (10)° | T = 295 K |
β = 108.11 (1)° | Plate, colorless |
γ = 104.320 (7)° | 0.23 × 0.11 × 0.08 mm |
V = 367.8 (4) Å3 |
Bruker SMART APEXII CCD area-detector diffractometer | 1236 independent reflections |
Radiation source: fine-focus sealed tube | 1157 reflections with I > 2σ(I) |
Graphite monochromator | Rint = 0.013 |
ϕ and ω scans | θmax = 25.0°, θmin = 2.6° |
Absorption correction: multi-scan (SADABS; Sheldrick, 2003) | h = −7→8 |
Tmin = 0.241, Tmax = 0.491 | k = −7→8 |
1751 measured reflections | l = −9→10 |
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)] = 0.023 | Hydrogen site location: inferred from neighbouring sites |
wR(F2) = 0.059 | H atoms treated by a mixture of independent and constrained refinement |
S = 1.05 | w = 1/[σ2(Fo2) + (0.0451P)2] where P = (Fo2 + 2Fc2)/3 |
1236 reflections | (Δ/σ)max < 0.001 |
127 parameters | Δρmax = 1.56 e Å−3 |
2 restraints | Δρmin = −1.41 e Å−3 |
[Gd2(C6H8O4)(C2O4)2(H2O)2] | γ = 104.320 (7)° |
Mr = 670.70 | V = 367.8 (4) Å3 |
Triclinic, P1 | Z = 1 |
a = 6.815 (4) Å | Mo Kα radiation |
b = 6.982 (4) Å | µ = 9.02 mm−1 |
c = 8.997 (7) Å | T = 295 K |
α = 104.759 (10)° | 0.23 × 0.11 × 0.08 mm |
β = 108.11 (1)° |
Bruker SMART APEXII CCD area-detector diffractometer | 1236 independent reflections |
Absorption correction: multi-scan (SADABS; Sheldrick, 2003) | 1157 reflections with I > 2σ(I) |
Tmin = 0.241, Tmax = 0.491 | Rint = 0.013 |
1751 measured reflections |
R[F2 > 2σ(F2)] = 0.023 | 2 restraints |
wR(F2) = 0.059 | H atoms treated by a mixture of independent and constrained refinement |
S = 1.05 | Δρmax = 1.56 e Å−3 |
1236 reflections | Δρmin = −1.41 e Å−3 |
127 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) | |
Gd | 0.15528 (4) | 0.34583 (3) | 0.36187 (3) | 0.01206 (12) | |
O1 | 0.1523 (6) | 0.5226 (6) | 0.6494 (4) | 0.0175 (8) | |
O2 | 0.4788 (6) | 0.5964 (5) | 0.6393 (4) | 0.0156 (8) | |
O3 | 0.2680 (6) | 0.1539 (6) | 0.5394 (4) | 0.0168 (8) | |
O4 | 0.1538 (6) | −0.0817 (6) | 0.6500 (5) | 0.0191 (8) | |
O5 | −0.0130 (7) | 0.2517 (6) | 0.0669 (4) | 0.0191 (8) | |
O6 | −0.1324 (7) | 0.0169 (6) | −0.1924 (5) | 0.0210 (9) | |
O7 | 0.2703 (7) | 0.6881 (6) | 0.3356 (5) | 0.0218 (9) | |
H7A | 0.403 (5) | 0.763 (10) | 0.370 (8) | 0.033* | |
H7B | 0.218 (12) | 0.757 (10) | 0.281 (8) | 0.033* | |
C1 | 0.3614 (9) | 0.6107 (8) | 0.7255 (7) | 0.0144 (11) | |
C2 | 0.4651 (10) | 0.7225 (9) | 0.9107 (7) | 0.0193 (12) | |
H2A | 0.4012 | 0.8285 | 0.9405 | 0.023* | 0.75 |
H2B | 0.6218 | 0.7953 | 0.9448 | 0.023* | 0.75 |
H2C | 0.3517 | 0.7421 | 0.9503 | 0.023* | 0.25 |
H2D | 0.5696 | 0.8616 | 0.9373 | 0.023* | 0.25 |
C3A | 0.4343 (15) | 0.5720 (14) | 1.0070 (10) | 0.0262 (17) | 0.75 |
H3A1 | 0.4800 | 0.6550 | 1.1242 | 0.031* | 0.75 |
H3A2 | 0.2790 | 0.4864 | 0.9633 | 0.031* | 0.75 |
C3B | 0.588 (4) | 0.598 (4) | 1.005 (3) | 0.0262 (17) | 0.25 |
H3B1 | 0.6830 | 0.5544 | 0.9531 | 0.031* | 0.25 |
H3B2 | 0.6791 | 0.6879 | 1.1213 | 0.031* | 0.25 |
C4 | 0.1222 (8) | 0.0203 (8) | 0.5547 (6) | 0.0140 (11) | |
C5 | −0.0433 (9) | 0.0774 (8) | −0.0367 (7) | 0.0143 (11) |
U11 | U22 | U33 | U12 | U13 | U23 | |
Gd | 0.00971 (18) | 0.01274 (17) | 0.00989 (17) | 0.00183 (12) | 0.00225 (12) | 0.00217 (11) |
O1 | 0.016 (2) | 0.0173 (19) | 0.0148 (19) | 0.0059 (16) | 0.0033 (16) | 0.0017 (16) |
O2 | 0.013 (2) | 0.0160 (19) | 0.0132 (19) | 0.0034 (16) | 0.0050 (16) | 0.0007 (15) |
O3 | 0.011 (2) | 0.0182 (19) | 0.0161 (19) | 0.0011 (16) | 0.0029 (16) | 0.0050 (16) |
O4 | 0.013 (2) | 0.021 (2) | 0.020 (2) | 0.0031 (17) | 0.0015 (16) | 0.0105 (17) |
O5 | 0.021 (2) | 0.018 (2) | 0.0131 (19) | 0.0066 (17) | 0.0035 (16) | 0.0023 (16) |
O6 | 0.027 (2) | 0.021 (2) | 0.014 (2) | 0.0086 (18) | 0.0061 (18) | 0.0053 (17) |
O7 | 0.017 (2) | 0.020 (2) | 0.029 (2) | 0.0045 (18) | 0.0081 (19) | 0.0134 (18) |
C1 | 0.016 (3) | 0.011 (2) | 0.013 (3) | 0.006 (2) | 0.002 (2) | 0.005 (2) |
C2 | 0.015 (3) | 0.020 (3) | 0.018 (3) | 0.003 (2) | 0.006 (2) | 0.003 (2) |
C3A | 0.026 (4) | 0.037 (4) | 0.016 (4) | 0.013 (4) | 0.009 (3) | 0.007 (4) |
C3B | 0.026 (4) | 0.037 (4) | 0.016 (4) | 0.013 (4) | 0.009 (3) | 0.007 (4) |
C4 | 0.009 (3) | 0.016 (3) | 0.012 (3) | 0.003 (2) | 0.002 (2) | 0.001 (2) |
C5 | 0.008 (3) | 0.016 (3) | 0.016 (3) | 0.001 (2) | 0.004 (2) | 0.003 (2) |
Gd—O1 | 2.575 (4) | O7—H7B | 0.83 (7) |
Gd—O1i | 2.473 (4) | C1—C2 | 1.489 (8) |
Gd—O2 | 2.569 (4) | C2—C3A | 1.538 (10) |
Gd—O2ii | 2.430 (4) | C2—C3B | 1.57 (3) |
Gd—O3 | 2.403 (4) | C2—H2A | 0.9700 |
Gd—O4iii | 2.385 (4) | C2—H2B | 0.9700 |
Gd—O5 | 2.374 (4) | C2—H2C | 0.9700 |
Gd—O6iv | 2.540 (4) | C2—H2D | 0.9700 |
Gd—O7 | 2.420 (4) | C3A—C3Av | 1.510 (16) |
O1—C1 | 1.274 (7) | C3A—H3A1 | 0.9700 |
O2—C1 | 1.279 (6) | C3A—H3A2 | 0.9700 |
O3—C4 | 1.252 (7) | C3B—C3Bv | 1.54 (5) |
O4—C4 | 1.249 (6) | C3B—H3B1 | 0.9700 |
O5—C5 | 1.253 (6) | C3B—H3B2 | 0.9700 |
O6—C5 | 1.246 (7) | C4—C4iii | 1.558 (10) |
O7—H7A | 0.84 (6) | C5—C5iv | 1.546 (10) |
O5—Gd—O4iii | 89.95 (13) | C4—O3—Gd | 118.6 (3) |
O5—Gd—O3 | 133.53 (13) | C4—O4—Gdiii | 119.1 (3) |
O4iii—Gd—O3 | 68.29 (13) | C5—O5—Gd | 123.7 (3) |
O5—Gd—O7 | 78.95 (14) | C5—O6—Gdiv | 117.9 (3) |
O4iii—Gd—O7 | 142.92 (13) | Gd—O7—H7A | 122 (5) |
O3—Gd—O7 | 141.60 (14) | Gd—O7—H7B | 139 (5) |
O5—Gd—O2ii | 92.50 (13) | H7A—O7—H7B | 97 (7) |
O4iii—Gd—O2ii | 142.01 (12) | O1—C1—O2 | 118.3 (5) |
O3—Gd—O2ii | 83.07 (12) | O1—C1—C2 | 120.4 (5) |
O7—Gd—O2ii | 74.35 (13) | O2—C1—C2 | 121.2 (5) |
O5—Gd—O1i | 81.91 (12) | O1—C1—Gd | 59.4 (3) |
O4iii—Gd—O1i | 69.18 (13) | O2—C1—Gd | 59.1 (3) |
O3—Gd—O1i | 122.76 (12) | C2—C1—Gd | 174.0 (4) |
O7—Gd—O1i | 74.25 (14) | C1—C2—C3A | 112.9 (5) |
O2ii—Gd—O1i | 148.60 (13) | C1—C2—C3B | 112.6 (10) |
O5—Gd—O6iv | 65.44 (13) | C1—C2—H2A | 109.0 |
O4iii—Gd—O6iv | 70.90 (14) | C3A—C2—H2A | 109.0 |
O3—Gd—O6iv | 68.66 (13) | C3B—C2—H2A | 135.3 |
O7—Gd—O6iv | 131.77 (14) | C1—C2—H2B | 109.0 |
O2ii—Gd—O6iv | 75.79 (13) | C3A—C2—H2B | 109.0 |
O1i—Gd—O6iv | 127.57 (13) | C3B—C2—H2B | 73.4 |
O5—Gd—O2 | 147.43 (13) | H2A—C2—H2B | 107.8 |
O4iii—Gd—O2 | 122.50 (13) | C1—C2—H2C | 109.1 |
O3—Gd—O2 | 69.27 (13) | C3A—C2—H2C | 73.3 |
O7—Gd—O2 | 73.02 (13) | C3B—C2—H2C | 109.1 |
O2ii—Gd—O2 | 64.38 (14) | H2B—C2—H2C | 136.9 |
O1i—Gd—O2 | 105.56 (12) | C1—C2—H2D | 109.1 |
O6iv—Gd—O2 | 124.28 (12) | C3A—C2—H2D | 134.9 |
O5—Gd—O1 | 147.09 (13) | C3B—C2—H2D | 109.1 |
O4iii—Gd—O1 | 80.01 (13) | H2C—C2—H2D | 107.8 |
O3—Gd—O1 | 71.21 (13) | C3Av—C3A—C2 | 112.2 (8) |
O7—Gd—O1 | 90.34 (13) | C3Av—C3A—H2C | 148.3 |
O2ii—Gd—O1 | 114.63 (12) | C3Av—C3A—H3A1 | 109.2 |
O1i—Gd—O1 | 65.20 (14) | C2—C3A—H3A1 | 109.2 |
O6iv—Gd—O1 | 136.78 (12) | H2C—C3A—H3A1 | 91.7 |
O2—Gd—O1 | 50.45 (12) | C3Av—C3A—H3A2 | 109.2 |
O5—Gd—C1 | 159.72 (13) | C2—C3A—H3A2 | 109.2 |
O4iii—Gd—C1 | 100.86 (14) | H2C—C3A—H3A2 | 85.5 |
O3—Gd—C1 | 66.75 (14) | H3A1—C3A—H3A2 | 107.9 |
O7—Gd—C1 | 82.15 (15) | C3Bv—C3B—C2 | 108 (2) |
O2ii—Gd—C1 | 89.45 (14) | C3Bv—C3B—H3B1 | 110.1 |
O1i—Gd—C1 | 85.94 (14) | C2—C3B—H3B1 | 110.1 |
O6iv—Gd—C1 | 134.31 (13) | C3Bv—C3B—H3B2 | 110.1 |
O2—Gd—C1 | 25.31 (13) | C2—C3B—H3B2 | 110.1 |
O1—Gd—C1 | 25.21 (14) | H3B1—C3B—H3B2 | 108.4 |
C1—O1—Gdi | 133.0 (3) | O4—C4—O3 | 126.3 (5) |
C1—O1—Gd | 95.4 (3) | O4—C4—C4iii | 117.1 (6) |
Gdi—O1—Gd | 114.80 (14) | O3—C4—C4iii | 116.6 (6) |
C1—O2—Gdii | 147.7 (3) | O6—C5—O5 | 127.0 (5) |
C1—O2—Gd | 95.5 (3) | O6—C5—C5iv | 116.6 (6) |
Gdii—O2—Gd | 115.62 (14) | O5—C5—C5iv | 116.4 (6) |
O5—Gd—O1—C1 | −140.5 (3) | O3—Gd—O5—C5 | −8.0 (5) |
O4iii—Gd—O1—C1 | 145.4 (3) | O7—Gd—O5—C5 | 148.3 (4) |
O3—Gd—O1—C1 | 75.1 (3) | O2ii—Gd—O5—C5 | 74.8 (4) |
O7—Gd—O1—C1 | −70.5 (3) | O1i—Gd—O5—C5 | −136.2 (4) |
O2ii—Gd—O1—C1 | 2.4 (3) | O6iv—Gd—O5—C5 | 1.7 (4) |
O1i—Gd—O1—C1 | −143.0 (4) | O2—Gd—O5—C5 | 117.5 (4) |
O6iv—Gd—O1—C1 | 97.7 (3) | O1—Gd—O5—C5 | −138.6 (4) |
O2—Gd—O1—C1 | −3.1 (3) | C1—Gd—O5—C5 | 170.0 (4) |
O5—Gd—O1—Gdi | 2.5 (3) | Gdi—O1—C1—O2 | −126.2 (4) |
O4iii—Gd—O1—Gdi | −71.57 (16) | Gd—O1—C1—O2 | 5.5 (5) |
O3—Gd—O1—Gdi | −141.88 (18) | Gdi—O1—C1—C2 | 55.3 (6) |
O7—Gd—O1—Gdi | 72.44 (17) | Gd—O1—C1—C2 | −173.1 (4) |
O2ii—Gd—O1—Gdi | 145.34 (15) | Gdi—O1—C1—Gd | −131.6 (4) |
O1i—Gd—O1—Gdi | −0.001 (2) | Gdii—O2—C1—O1 | −170.9 (4) |
O6iv—Gd—O1—Gdi | −119.29 (18) | Gd—O2—C1—O1 | −5.5 (5) |
O2—Gd—O1—Gdi | 139.9 (2) | Gdii—O2—C1—C2 | 7.6 (9) |
C1—Gd—O1—Gdi | 143.0 (4) | Gd—O2—C1—C2 | 173.0 (4) |
O5—Gd—O2—C1 | 139.9 (3) | Gdii—O2—C1—Gd | −165.4 (6) |
O4iii—Gd—O2—C1 | −34.5 (3) | O5—Gd—C1—O1 | 86.4 (5) |
O3—Gd—O2—C1 | −79.2 (3) | O4iii—Gd—C1—O1 | −34.7 (3) |
O7—Gd—O2—C1 | 108.2 (3) | O3—Gd—C1—O1 | −95.2 (3) |
O2ii—Gd—O2—C1 | −171.4 (4) | O7—Gd—C1—O1 | 107.9 (3) |
O1i—Gd—O2—C1 | 40.5 (3) | O2ii—Gd—C1—O1 | −177.9 (3) |
O6iv—Gd—O2—C1 | −122.4 (3) | O1i—Gd—C1—O1 | 33.2 (3) |
O1—Gd—O2—C1 | 3.1 (3) | O6iv—Gd—C1—O1 | −108.5 (3) |
O5—Gd—O2—Gdii | −48.6 (3) | O2—Gd—C1—O1 | 174.4 (5) |
O4iii—Gd—O2—Gdii | 136.96 (15) | O5—Gd—C1—O2 | −88.0 (5) |
O3—Gd—O2—Gdii | 92.21 (16) | O4iii—Gd—C1—O2 | 150.9 (3) |
O7—Gd—O2—Gdii | −80.42 (17) | O3—Gd—C1—O2 | 90.4 (3) |
O2ii—Gd—O2—Gdii | 0.0 | O7—Gd—C1—O2 | −66.5 (3) |
O1i—Gd—O2—Gdii | −148.11 (15) | O2ii—Gd—C1—O2 | 7.7 (3) |
O6iv—Gd—O2—Gdii | 49.0 (2) | O1i—Gd—C1—O2 | −141.2 (3) |
O1—Gd—O2—Gdii | 174.5 (2) | O6iv—Gd—C1—O2 | 77.1 (3) |
C1—Gd—O2—Gdii | 171.4 (4) | O1—Gd—C1—O2 | −174.4 (5) |
O5—Gd—O3—C4 | −72.7 (4) | O1—C1—C2—C3A | 66.3 (7) |
O4iii—Gd—O3—C4 | −5.0 (4) | Gdiii—O4—C4—O3 | −175.4 (4) |
O7—Gd—O3—C4 | 146.7 (3) | Gdiii—O4—C4—C4iii | 5.3 (7) |
O2ii—Gd—O3—C4 | −159.5 (4) | Gd—O3—C4—O4 | −175.0 (4) |
O1i—Gd—O3—C4 | 39.7 (4) | Gd—O3—C4—C4iii | 4.3 (7) |
O6iv—Gd—O3—C4 | −82.1 (4) | Gdiv—O6—C5—O5 | 178.4 (4) |
O2—Gd—O3—C4 | 135.3 (4) | Gdiv—O6—C5—C5iv | −0.3 (7) |
O1—Gd—O3—C4 | 81.5 (4) | Gd—O5—C5—O6 | 179.1 (4) |
C1—Gd—O3—C4 | 108.1 (4) | Gd—O5—C5—C5iv | −2.1 (8) |
O4iii—Gd—O5—C5 | −67.3 (4) |
Symmetry codes: (i) −x, −y+1, −z+1; (ii) −x+1, −y+1, −z+1; (iii) −x, −y, −z+1; (iv) −x, −y, −z; (v) −x+1, −y+1, −z+2. |
D—H···A | D—H | H···A | D···A | D—H···A |
O7—H7A···O3ii | 0.84 (6) | 2.00 (5) | 2.799 (4) | 160 |
O7—H7B···O6vi | 0.83 (7) | 2.07 (7) | 2.888 (5) | 168 |
Symmetry codes: (ii) −x+1, −y+1, −z+1; (vi) −x, −y+1, −z. |
Experimental details
Crystal data | |
Chemical formula | [Gd2(C6H8O4)(C2O4)2(H2O)2] |
Mr | 670.70 |
Crystal system, space group | Triclinic, P1 |
Temperature (K) | 295 |
a, b, c (Å) | 6.815 (4), 6.982 (4), 8.997 (7) |
α, β, γ (°) | 104.759 (10), 108.11 (1), 104.320 (7) |
V (Å3) | 367.8 (4) |
Z | 1 |
Radiation type | Mo Kα |
µ (mm−1) | 9.02 |
Crystal size (mm) | 0.23 × 0.11 × 0.08 |
Data collection | |
Diffractometer | Bruker SMART APEXII CCD area-detector diffractometer |
Absorption correction | Multi-scan (SADABS; Sheldrick, 2003) |
Tmin, Tmax | 0.241, 0.491 |
No. of measured, independent and observed [I > 2σ(I)] reflections | 1751, 1236, 1157 |
Rint | 0.013 |
(sin θ/λ)max (Å−1) | 0.595 |
Refinement | |
R[F2 > 2σ(F2)], wR(F2), S | 0.023, 0.059, 1.05 |
No. of reflections | 1236 |
No. of parameters | 127 |
No. of restraints | 2 |
H-atom treatment | H atoms treated by a mixture of independent and constrained refinement |
Δρmax, Δρmin (e Å−3) | 1.56, −1.41 |
Computer programs: APEX2 (Bruker, 2004), SAINT (Bruker, 2004), SHELXS97 (Sheldrick, 2008), SHELXL97 (Sheldrick, 2008), SHELXTL (Sheldrick, 2008).
D—H···A | D—H | H···A | D···A | D—H···A |
O7—H7A···O3i | 0.84 (6) | 2.00 (5) | 2.799 (4) | 160 |
O7—H7B···O6ii | 0.83 (7) | 2.07 (7) | 2.888 (5) | 168 |
Symmetry codes: (i) −x+1, −y+1, −z+1; (ii) −x, −y+1, −z. |
Acknowledgements
This work was supported by the Jiangxi Provincial Educational Foundation (GJJ09227).
References
Bruker (2004). APEX2 and SAINT. Bruker AXS Inc., Madison, Wisconsin, USA. Google Scholar
Dimos, A., Tsaousis, D., Michaelides, A. & Skoulika, S. (2002). Chem. Mater. 14, 2616–2622. Web of Science CSD CrossRef CAS Google Scholar
Sheldrick, G. M. (2003). SADABS. University of Göttingen, Germany. Google Scholar
Sheldrick, G. M. (2008). Acta Cryst. A64, 112–122. Web of Science CrossRef CAS IUCr Journals Google Scholar
Trombe, J. C. & Mohanu, A. (2004). Solid State Sci. 6, 1403–1419. Web of Science CSD CrossRef CAS 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.
As shown in Fig. 1 the asymmetric unit of the title compound consists of one Gd3+ cation, half of an adipate anion, two half oxalate anions and one aqua ligand. The Gd atom is coordinated by nine oxygen atoms, in which four oxygen atoms are from three adipate anions, four from two oxalate anions and one from a water molecule, to form a SmO9 polyhedron with a distorted tricapped trigonal-prismatic geometry. The Gd—O(adipate) distances vary in the range of 2.430 (4)–2.575 (4) Å (average 2.512 (4) Å), which is nearly identical to the value of 2.425 (8)–2.611 (8) Å (average 2.471 (8) Å) observed in Gd2(C6H8O4)3(H2O)4 (Dimos et al., 2002). The Gd—O(oxalate) distances are in the range of 2.385 (4)–2.540 (4) Å, which are usual for lanthanide oxalates complexes (Trombe & Mohanu, 2004). In the title complex, the adipate anions are located on inversion centers and atom C3 is positionally disordered (C3A and C3B; occupancies 0.75/0.25). Two carboxylate oxygen atoms chelate one Gd atom with each oxygen atom additionally bonded to another Gd atom. To the best of our knowledge, this η2,µ3-η2,µ3-chelating-bridging octadentate coordination mode of the adipate ligand has not been reported previously.
Through the terminal carboxylato bridging interactions, the GdO9 polyhedra are edged-shared to generate metal-oxygen chains extending infinitely along [100], in which the adjacent Gd···Gd distances are 4.23 (3) Å and 4.25 (2) Å, respectively. Along [001] the chains are linked by the adipate anions into layers parallel to (010) (Fig. 2). Two symmetry independent oxalate ions are also located on centers of inversion and act as double bidentate (tetradentate) ligands in a linear chain, which connect Gd atoms to form zigzag chains along [001]. Through the oxalate and adipate ligand bridging interactions, the Gd atoms build up a three-dimensional open framework with the channels propagating in [001] (Fig. 3). The aqua ligand provides H-bond donors which participate in O-H···O hydrogen bonds with the oxalate atoms O3 and O6 (Table 1).