Supporting information
Crystallographic Information File (CIF) https://doi.org/10.1107/S1600536805027698/hg6240sup1.cif | |
Structure factor file (CIF format) https://doi.org/10.1107/S1600536805027698/hg6240Isup2.hkl |
CCDC reference: 287595
Key indicators
- Single-crystal X-ray study
- T = 296 K
- Mean (C-C) = 0.004 Å
- R factor = 0.033
- wR factor = 0.086
- Data-to-parameter ratio = 16.0
checkCIF/PLATON results
No syntax errors found
Alert level C PLAT066_ALERT_1_C Predicted and Reported Transmissions Identical . ? PLAT232_ALERT_2_C Hirshfeld Test Diff (M-X) Zn1 - O1M .. 5.42 su
0 ALERT level A = In general: serious problem 0 ALERT level B = Potentially serious problem 2 ALERT level C = Check and explain 0 ALERT level G = General alerts; check 1 ALERT type 1 CIF construction/syntax error, inconsistent or missing data 1 ALERT type 2 Indicator that the structure model may be wrong or deficient 0 ALERT type 3 Indicator that the structure quality may be low 0 ALERT type 4 Improvement, methodology, query or suggestion
Colorless plate crystals of (I) were obtained by slow evapolation of a methanol solution of a mixture of isoquinoline-3-carboxylic acid (5 mg) dissolved in methanol (3 ml) and ZnSO4 (2.1 mg) dissolved in methanol (2 ml) (molar ratio 4:1) at room temperature.
All H atoms were located in difference Fourier maps, and then were regenerated at ideal positions [C—H = 0.96 (methyl), 0.93 Å (other H atoms); Uiso(H) = 1.5Ueq(methyl C) and 1.2Ueq(other C)]. The weighting schemes for both structures were optimized.
Data collection: MSC/AFC Diffractometer Control Software (Molecular Structure Corporation, 1992); cell refinement: MSC/AFC Diffractometer Control Software; data reduction: TEXSAN (Molecular Structure Corporation, 2000); program(s) used to solve structure: SIR97 (Altomare et al., 1999); program(s) used to refine structure: SHELXL97 (Sheldrick, 1997); molecular graphics: ORTEPII (Johnson, 1976); software used to prepare material for publication: TEXSAN.
[Zn(C10H6NO2)2(CH4O)2] | F(000) = 488.0 |
Mr = 473.79 | Dx = 1.577 Mg m−3 |
Monoclinic, P21/c | Mo Kα radiation, λ = 0.7107 Å |
Hall symbol: -P 2ybc | Cell parameters from 25 reflections |
a = 10.672 (1) Å | θ = 14.2–15.0° |
b = 6.301 (2) Å | µ = 1.27 mm−1 |
c = 15.091 (1) Å | T = 296 K |
β = 100.567 (9)° | Prism, colorless |
V = 997.6 (3) Å3 | 0.40 × 0.10 × 0.10 mm |
Z = 2 |
Rigaku AFC-5R diffractometer | Rint = 0.025 |
ω–2θ scans | θmax = 27.5° |
Absorption correction: ψ scan (North et al., 1968) | h = 0→13 |
Tmin = 0.858, Tmax = 0.880 | k = 0→8 |
2627 measured reflections | l = −19→19 |
2288 independent reflections | 3 standard reflections every 150 reflections |
1515 reflections with I > 2σ(I) | intensity decay: 0.1% |
Refinement on F2 | H-atom parameters constrained |
R[F2 > 2σ(F2)] = 0.033 | w = 1/[σ2(Fo2) + (0.0297P)2 + 0.6344P] where P = (Fo2 + 2Fc2)/3 |
wR(F2) = 0.086 | (Δ/σ)max < 0.001 |
S = 1.01 | Δρmax = 0.30 e Å−3 |
2288 reflections | Δρmin = −0.47 e Å−3 |
143 parameters |
[Zn(C10H6NO2)2(CH4O)2] | V = 997.6 (3) Å3 |
Mr = 473.79 | Z = 2 |
Monoclinic, P21/c | Mo Kα radiation |
a = 10.672 (1) Å | µ = 1.27 mm−1 |
b = 6.301 (2) Å | T = 296 K |
c = 15.091 (1) Å | 0.40 × 0.10 × 0.10 mm |
β = 100.567 (9)° |
Rigaku AFC-5R diffractometer | 1515 reflections with I > 2σ(I) |
Absorption correction: ψ scan (North et al., 1968) | Rint = 0.025 |
Tmin = 0.858, Tmax = 0.880 | 3 standard reflections every 150 reflections |
2627 measured reflections | intensity decay: 0.1% |
2288 independent reflections |
R[F2 > 2σ(F2)] = 0.033 | 143 parameters |
wR(F2) = 0.086 | H-atom parameters constrained |
S = 1.01 | Δρmax = 0.30 e Å−3 |
2288 reflections | Δρmin = −0.47 e Å−3 |
Refinement. Refinement using reflections with F2 > −10.0 σ(F2). The weighted R-factor (wR) and goodness of fit (S) are based on F2. R-factor (gt) are based on F. The threshold expression of F2 > 2.0 σ(F2) is used only for calculating R-factor (gt). |
x | y | z | Uiso*/Ueq | ||
Zn1 | 0.0000 | 0.5000 | 0.5000 | 0.0314 (1) | |
O1 | 0.0368 (2) | 0.2152 (3) | 0.4428 (1) | 0.0352 (4) | |
O1M | 0.0400 (2) | 0.6690 (3) | 0.3796 (1) | 0.0369 (5) | |
O2 | 0.1933 (2) | −0.0160 (3) | 0.4363 (1) | 0.0438 (5) | |
N1 | 0.1975 (2) | 0.4835 (4) | 0.5459 (1) | 0.0283 (4) | |
C1 | 0.2455 (2) | 0.2957 (4) | 0.5209 (2) | 0.0269 (5) | |
C2 | 0.3713 (2) | 0.2453 (4) | 0.5450 (2) | 0.0302 (6) | |
C3 | 0.4571 (2) | 0.3900 (5) | 0.5946 (2) | 0.0297 (6) | |
C4 | 0.5902 (3) | 0.3521 (5) | 0.6190 (2) | 0.0369 (7) | |
C5 | 0.6683 (2) | 0.5044 (6) | 0.6637 (2) | 0.0421 (7) | |
C6 | 0.6183 (3) | 0.6982 (6) | 0.6873 (2) | 0.0434 (8) | |
C7 | 0.4906 (3) | 0.7385 (5) | 0.6662 (2) | 0.0364 (6) | |
C8 | 0.4078 (3) | 0.5854 (5) | 0.6194 (2) | 0.0291 (6) | |
C9 | 0.2750 (2) | 0.6212 (4) | 0.5928 (2) | 0.0292 (6) | |
C10 | 0.1506 (2) | 0.1517 (4) | 0.4620 (2) | 0.0307 (6) | |
C11 | −0.0523 (3) | 0.7327 (7) | 0.3043 (2) | 0.0604 (10) | |
H1M | 0.0709 | 0.8038 | 0.3972 | 0.0554* | |
H2 | 0.4006 | 0.1146 | 0.5286 | 0.0362* | |
H4 | 0.6241 | 0.2235 | 0.6045 | 0.0442* | |
H5 | 0.7555 | 0.4795 | 0.6786 | 0.0505* | |
H6 | 0.6728 | 0.8003 | 0.7177 | 0.0521* | |
H7 | 0.4584 | 0.8668 | 0.6827 | 0.0436* | |
H9 | 0.2412 | 0.7482 | 0.6093 | 0.0351* | |
H11A | −0.1101 | 0.6174 | 0.2859 | 0.0906* | |
H11B | −0.0104 | 0.7712 | 0.2555 | 0.0906* | |
H11C | −0.0989 | 0.8524 | 0.3206 | 0.0906* |
U11 | U22 | U33 | U12 | U13 | U23 | |
Zn1 | 0.0202 (2) | 0.0306 (2) | 0.0410 (2) | 0.0034 (2) | −0.0008 (2) | −0.0060 (3) |
O1 | 0.0257 (9) | 0.033 (1) | 0.044 (1) | 0.0004 (8) | −0.0005 (8) | −0.0075 (9) |
O1M | 0.034 (1) | 0.032 (1) | 0.042 (1) | −0.0016 (9) | 0.0004 (8) | 0.0009 (9) |
O2 | 0.0323 (10) | 0.030 (1) | 0.069 (1) | 0.0017 (10) | 0.0096 (9) | −0.015 (1) |
N1 | 0.0219 (9) | 0.030 (1) | 0.033 (1) | 0.003 (1) | 0.0036 (8) | −0.001 (1) |
C1 | 0.024 (1) | 0.024 (1) | 0.033 (1) | 0.001 (1) | 0.0059 (10) | 0.000 (1) |
C2 | 0.026 (1) | 0.030 (1) | 0.036 (1) | 0.004 (1) | 0.009 (1) | −0.002 (1) |
C3 | 0.026 (1) | 0.038 (2) | 0.026 (1) | 0.004 (1) | 0.006 (1) | 0.002 (1) |
C4 | 0.026 (1) | 0.047 (2) | 0.037 (2) | 0.008 (1) | 0.007 (1) | 0.002 (1) |
C5 | 0.020 (1) | 0.064 (2) | 0.041 (1) | 0.003 (2) | 0.0018 (10) | 0.000 (2) |
C6 | 0.028 (1) | 0.059 (2) | 0.042 (2) | −0.007 (1) | 0.002 (1) | −0.009 (2) |
C7 | 0.031 (1) | 0.042 (2) | 0.035 (1) | −0.003 (1) | 0.004 (1) | −0.006 (1) |
C8 | 0.025 (1) | 0.037 (1) | 0.025 (1) | 0.000 (1) | 0.005 (1) | 0.002 (1) |
C9 | 0.023 (1) | 0.031 (1) | 0.033 (1) | 0.003 (1) | 0.004 (1) | −0.002 (1) |
C10 | 0.030 (1) | 0.026 (1) | 0.038 (1) | −0.002 (1) | 0.009 (1) | 0.000 (1) |
C11 | 0.052 (2) | 0.076 (3) | 0.048 (2) | 0.001 (2) | −0.006 (2) | 0.011 (2) |
Zn1—O1 | 2.060 (2) | C3—C4 | 1.420 (4) |
Zn1—O1i | 2.060 (2) | C3—C8 | 1.416 (4) |
Zn1—O1M | 2.214 (2) | C4—C5 | 1.365 (4) |
Zn1—O1Mi | 2.214 (2) | C4—H4 | 0.930 |
Zn1—N1 | 2.096 (2) | C5—C6 | 1.405 (5) |
Zn1—N1i | 2.096 (2) | C5—H5 | 0.930 |
O1—C10 | 1.261 (3) | C6—C7 | 1.365 (4) |
O1M—C11 | 1.419 (4) | C6—H6 | 0.930 |
O1M—H1M | 0.932 | C7—C8 | 1.408 (4) |
O2—C10 | 1.242 (4) | C7—H7 | 0.930 |
N1—C1 | 1.370 (4) | C8—C9 | 1.419 (4) |
N1—C9 | 1.313 (3) | C9—H9 | 0.930 |
C1—C2 | 1.363 (3) | C11—H11A | 0.960 |
C1—C10 | 1.519 (4) | C11—H11B | 0.960 |
C2—C3 | 1.407 (4) | C11—H11C | 0.960 |
C2—H2 | 0.930 | ||
O1···O1ii | 3.383 (4) | O2···C11iii | 3.380 (4) |
O1···C10ii | 3.530 (3) | O2···N1iii | 3.558 (3) |
O1···O2ii | 3.546 (3) | O2···C6v | 3.592 (4) |
O1···O1Miii | 3.573 (3) | C1···C5v | 3.336 (4) |
O1M···O2iv | 2.614 (3) | C2···C5v | 3.478 (4) |
O1M···C10iv | 3.413 (3) | C2···C6v | 3.546 (4) |
O1M···C5v | 3.472 (3) | C3···C3v | 3.446 (6) |
O2···C9iii | 3.288 (3) | C3···C4v | 3.563 (4) |
O2···C4vi | 3.350 (4) | C4···C7vii | 3.576 (4) |
O1—Zn1—O1i | 180.0000 (1) | C2—C3—C8 | 117.8 (2) |
O1—Zn1—O1M | 89.73 (7) | C4—C3—C8 | 118.7 (2) |
O1—Zn1—O1Mi | 90.27 (7) | C3—C4—C5 | 120.1 (3) |
O1—Zn1—N1 | 80.67 (8) | C3—C4—H4 | 120.0 |
O1—Zn1—N1i | 99.33 (8) | C5—C4—H4 | 120.0 |
O1i—Zn1—O1M | 90.27 (7) | C4—C5—C6 | 120.7 (2) |
O1i—Zn1—O1Mi | 89.73 (7) | C4—C5—H5 | 119.7 |
O1i—Zn1—N1 | 99.33 (8) | C6—C5—H5 | 119.7 |
O1i—Zn1—N1i | 80.67 (8) | C5—C6—C7 | 120.8 (3) |
O1M—Zn1—O1Mi | 180.0000 (1) | C5—C6—H6 | 119.6 |
O1M—Zn1—N1 | 87.78 (7) | C7—C6—H6 | 119.6 |
O1M—Zn1—N1i | 92.22 (7) | C6—C7—C8 | 119.8 (3) |
O1Mi—Zn1—N1 | 92.22 (7) | C6—C7—H7 | 120.1 |
O1Mi—Zn1—N1i | 87.78 (7) | C8—C7—H7 | 120.1 |
N1—Zn1—N1i | 180.0 | C3—C8—C7 | 119.9 (2) |
Zn1—O1—C10 | 115.4 (2) | C3—C8—C9 | 117.7 (2) |
Zn1—O1M—C11 | 125.7 (2) | C7—C8—C9 | 122.4 (3) |
Zn1—O1M—H1M | 108.4 | N1—C9—C8 | 123.1 (2) |
C11—O1M—H1M | 97.3 | N1—C9—H9 | 118.5 |
Zn1—N1—C1 | 110.9 (2) | C8—C9—H9 | 118.5 |
Zn1—N1—C9 | 129.9 (2) | O1—C10—O2 | 126.3 (2) |
C1—N1—C9 | 119.3 (2) | O1—C10—C1 | 117.1 (2) |
N1—C1—C2 | 121.9 (2) | O2—C10—C1 | 116.6 (2) |
N1—C1—C10 | 115.7 (2) | O1M—C11—H11A | 109.5 |
C2—C1—C10 | 122.4 (2) | O1M—C11—H11B | 109.5 |
C1—C2—C3 | 120.3 (3) | O1M—C11—H11C | 109.5 |
C1—C2—H2 | 119.9 | H11A—C11—H11B | 109.5 |
C3—C2—H2 | 119.9 | H11A—C11—H11C | 109.5 |
C2—C3—C4 | 123.4 (3) | H11B—C11—H11C | 109.5 |
Zn1—O1—C10—O2 | 178.8 (2) | N1—Zn1—O1—C10 | 3.5 (2) |
Zn1—O1—C10—C1 | −2.3 (3) | N1—Zn1—O1i—C10i | 176.5 (2) |
Zn1—O1i—C10i—O2i | −178.8 (2) | N1—Zn1—O1M—C11 | 175.7 (3) |
Zn1—O1i—C10i—C1i | 2.3 (3) | N1—Zn1—O1Mi—C11i | 4.3 (3) |
Zn1—N1—C1—C2 | −178.2 (2) | N1—C1—C2—C3 | −2.0 (4) |
Zn1—N1—C1—C10 | 4.0 (3) | N1—C9—C8—C3 | −0.9 (4) |
Zn1—N1—C9—C8 | 179.6 (2) | N1—C9—C8—C7 | 177.1 (3) |
Zn1—N1i—C1i—C2i | 178.2 (2) | C1—N1—C9—C8 | 0.0 (4) |
Zn1—N1i—C1i—C10i | −4.0 (3) | C1—C2—C3—C4 | −177.4 (3) |
Zn1—N1i—C9i—C8i | −179.6 (2) | C1—C2—C3—C8 | 1.0 (4) |
O1—Zn1—O1M—C11 | 95.0 (2) | C2—C1—N1—C9 | 1.5 (4) |
O1—Zn1—O1Mi—C11i | 85.0 (2) | C2—C3—C4—C5 | 177.0 (3) |
O1—Zn1—N1—C1 | −3.9 (2) | C2—C3—C8—C7 | −177.7 (3) |
O1—Zn1—N1—C9 | 176.5 (2) | C2—C3—C8—C9 | 0.3 (4) |
O1—Zn1—N1i—C1i | −176.1 (2) | C3—C2—C1—C10 | 175.7 (2) |
O1—Zn1—N1i—C9i | 3.5 (2) | C3—C4—C5—C6 | 1.0 (4) |
O1—C10—C1—N1 | −1.3 (4) | C3—C8—C7—C6 | 0.3 (4) |
O1—C10—C1—C2 | −179.1 (3) | C4—C3—C8—C7 | 0.8 (4) |
O1M—Zn1—O1—C10 | 91.3 (2) | C4—C3—C8—C9 | 178.8 (3) |
O1M—Zn1—O1i—C10i | 88.7 (2) | C4—C5—C6—C7 | 0.1 (5) |
O1M—Zn1—N1—C1 | −94.0 (2) | C5—C4—C3—C8 | −1.4 (4) |
O1M—Zn1—N1—C9 | 86.4 (2) | C5—C6—C7—C8 | −0.7 (5) |
O1M—Zn1—N1i—C1i | −86.0 (2) | C6—C7—C8—C9 | −177.7 (3) |
O1M—Zn1—N1i—C9i | 93.6 (2) | C9—N1—C1—C10 | −176.4 (2) |
O2—C10—C1—N1 | 177.7 (2) | C9—N1—C1—C10 | −176.4 (2) |
O2—C10—C1—C2 | −0.1 (4) |
Symmetry codes: (i) −x, −y+1, −z+1; (ii) −x, −y, −z+1; (iii) x, y−1, z; (iv) x, y+1, z; (v) −x+1, −y+1, −z+1; (vi) −x+1, −y, −z+1; (vii) −x+1, y−1/2, −z+3/2. |
D—H···A | D—H | H···A | D···A | D—H···A |
O1M—H1M···O2iv | 0.93 | 1.75 | 2.613 (3) | 153 |
Symmetry code: (iv) x, y+1, z. |
Experimental details
Crystal data | |
Chemical formula | [Zn(C10H6NO2)2(CH4O)2] |
Mr | 473.79 |
Crystal system, space group | Monoclinic, P21/c |
Temperature (K) | 296 |
a, b, c (Å) | 10.672 (1), 6.301 (2), 15.091 (1) |
β (°) | 100.567 (9) |
V (Å3) | 997.6 (3) |
Z | 2 |
Radiation type | Mo Kα |
µ (mm−1) | 1.27 |
Crystal size (mm) | 0.40 × 0.10 × 0.10 |
Data collection | |
Diffractometer | Rigaku AFC-5R diffractometer |
Absorption correction | ψ scan (North et al., 1968) |
Tmin, Tmax | 0.858, 0.880 |
No. of measured, independent and observed [I > 2σ(I)] reflections | 2627, 2288, 1515 |
Rint | 0.025 |
(sin θ/λ)max (Å−1) | 0.650 |
Refinement | |
R[F2 > 2σ(F2)], wR(F2), S | 0.033, 0.086, 1.01 |
No. of reflections | 2288 |
No. of parameters | 143 |
No. of restraints | ? |
H-atom treatment | H-atom parameters constrained |
Δρmax, Δρmin (e Å−3) | 0.30, −0.47 |
Computer programs: MSC/AFC Diffractometer Control Software (Molecular Structure Corporation, 1992), MSC/AFC Diffractometer Control Software, TEXSAN (Molecular Structure Corporation, 2000), SIR97 (Altomare et al., 1999), SHELXL97 (Sheldrick, 1997), ORTEPII (Johnson, 1976), TEXSAN.
M= | (II)a | (III)b | (IV)b | (V)b | (I) |
M—O1 | 2.050 (2) | 2.050 (2) | 2.036 (2) | 1.963 (2) | 2.060 (2) |
M—O1M | 2.196 (2) | 2.149 (2) | 2.116 (2) | 2.516 (2) | 2.214 (2) |
M—N1 | 2.167 (2) | 2.110 (2) | 2.049 (2) | 1.979 (2) | 2.096 (2) |
N1—C1 | 1.372 (4) | 1.376 (3) | 1.369 (3) | 1.372 (3) | 1.370 (4) |
N1—C9 | 1.315 (4) | 1.314 (3) | 1.314 (3) | 1.315 (3) | 1.313 (3) |
C1—C2 | 1.366 (4) | 1.357 (3) | 1.357 (3) | 1.361 (3) | 1.363 (3) |
C2—C3 | 1.414 (4) | 1.413 (3) | 1.412 (3) | 1.412 (3) | 1.407 (4) |
C3—C8 | 1.415 (5) | 1.416 (3) | 1.416 (4) | 1.418 (3) | 1.416 (4) |
C8—C9 | 1.416 (4) | 1.415 (3) | 1.417 (3) | 1.414 (3) | 1.419 (4) |
O1—M—O1M | 89.97 (9) | 89.65 (6) | 90.81 (7) | 90.41 (7) | 89.73 (7) |
O1—M—N1 | 78.86 (9) | 80.21 (6) | 81.63 (7) | 83.77 (7) | 80.67 (8) |
O1M—M—N1 | 92.43 (9) | 87.44 (7) | 92.55 (7) | 88.14 (7) | 87.78 (7) |
Notes: (a) Okabe & Muranishi (2003c); (b) Okabe et al. (2004). |
D—H···A | D—H | H···A | D···A | D—H···A | ||
(I) | O1M—H1M···O2i | 0.93 | 1.75 | 2.613 (3) | 153 | |
(II)a | O1M—H1M···O2ii | 0.97 | 1.66 | 2.617 (3) | 170 | |
(III)b | O1M—H1M···O2ii | 0.96 | 1.65 | 2.604 (2) | 172 | |
(IV)b | O1M—H1M···O2ii | 0.90 | 1.70 | 2.600 (3) | 178 | |
(V)b | O1M—H1M···O2ii | 0.82 | 1.86 | 2.679 (3) | 175 |
Symmetry code: (i) x, 1 + y, z; (ii) −x, −1 − y, −z. Notes: (a) Okabe & Muranishi (2003c); (b) Okabe et al. (2004). |
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Transition metal ions are well known to have many biological functions, such as antimicrobial or fungicidal activity (Okide et al., 2000; Patel et al., 1999), or have redox activity such as Fenton-type reactions (Kasprzak, 2002) inducing toxicity or carcinogenesis. ZnII is well known for its insulinomemetic activity (e.g. Matsumoto et al., 2005). In the previous papers, the crystal structures of the FeII (II), CoII (III), NiII (IV) and CuII (V) complexes of isoquinoline-3-carboxylate have been reported (Okabe & Muranishi, 2003c; Okabe et al., 2004). We report here the structure of the corresponding ZnII complex, (I).
The structure of (I) is shown in Fig. 1. It is isomorphous with the analogs (II)–(V), with the metal ion at a center of inversion and a distorted octahedral coordination geometry.
The two bidentate ligands lie trans to each other. They are coordinated to the central metal ion, through the isoquinoline N atoms and the carboxylate O atoms to form five-membered rings in the equatorial plane. Two O atoms of the methanol ligands complete the octahedron at the axial positions. The coordination bond distances of (I) are listed in Table 1, together with those of (II)–(V).
As shown in Table 1, coordination bond distances, M—N, decrease in the order (II) > (III) > (IV) > (V) < (I). The reverse of this order coincides well with the Irving–Williams series, which indicates the general stability sequence of octahedral metal complexes in the order Fe < Co < Ni < Cu > Zn. The longest axial coordination bond distance (M—O1m) of (V) is explained by the Jahn–Teller effect. The bond lengths of both sides of the ring N atom (N1—C1 and N1—C9) and C atom (C1—C2) of all complexes are shorter than those of others in the same pyridine ring, C2—C3, C3—C8 and C8—C9 (Table 1). This indicates that the double-bond character of these three bonds may be a general characteristic of the transition metal complexes of isoquinoline-3-carboxylate.
It is noticed that only the bonds on either side of the N atom have double-bond character in the isoquinoline-1-carboxylate complexes with FeII (Muranishi & Okabe, 2003), CoII and NiII (Okabe & Muranishi, 2002), and ZnII (Okabe & Muranishi, 2003b), and in the quinoline-2-carboxylate complexes with FeII (Okabe & Makino, 1998), CoII (Okabe & Makino, 1999), NiII (Odoko et al., 2001) and ZnII (Okabe & Muranishi, 2003a).
The hydrogen-bonding parameters of (I)–(V) are listed in Table 2 for comparison. All structures are stabilized by a similar intermolecular O—H···O hydrogen-bonding pattern between methanol ligands and the neighbouring carboxylate groups. A stacking interaction is also observed between the ligands with a mean distance of 3.366 (4) Å.