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Journal logoCRYSTALLOGRAPHIC
COMMUNICATIONS
ISSN: 2056-9890
Volume 67| Part 5| May 2011| Page o1144

3-Acetyl-5-hy­dr­oxy-2-methyl­anthra[1,2-b]furan-6,11-dione

aFaculty of Applied Sciences, Universiti Teknologi MARA, Shah Alam 40450, Selangor, Malaysia, and bDepartment of Chemistry, University of Malaya, 50603 Kuala Lumpur, Malaysia
*Correspondence e-mail: seikweng@um.edu.my

(Received 4 April 2011; accepted 10 April 2011; online 16 April 2011)

The asymmetric unit of the title compound, C19H12O5, contains two independent mol­ecules, both slightly buckled along an axis passing through the C=O bonds of the anthraquinone ring system (r.m.s. deviation of non-H atoms = 0.082 and 0.148 Å): the benzene rings are twisted to each other by 4.3 (3)°in one mol­ecule and 10.6(3)° in the other. In both mol­ecules, the hy­droxy group forms an intra­molecular O—H⋯O hydrogen bond. The two independent mol­ecules inter­act by ππ stacking with a centroid–centroid distance of 3.539 (2) Å between hy­droxy­benzene rings of adjacent mol­ecules.

Related literature

For background to the synthesis, see: Boddy et al. (1986[Boddy, I. K., Cambie, R. C., Rutledge, P. S. & Woodgate, P. D. (1986). Aust. J. Chem. 39, 2075-2088.]).

[Scheme 1]

Experimental

Crystal data
  • C19H12O5

  • Mr = 320.29

  • Monoclinic, P 21 /c

  • a = 12.5739 (9) Å

  • b = 22.0375 (12) Å

  • c = 10.7453 (8) Å

  • β = 110.342 (8)°

  • V = 2791.8 (3) Å3

  • Z = 8

  • Mo Kα radiation

  • μ = 0.11 mm−1

  • T = 100 K

  • 0.35 × 0.05 × 0.02 mm

Data collection
  • Agilent SuperNova Dual diffractometer with an Atlas detector

  • Absorption correction: multi-scan (CrysAlis PRO; Agilent, 2010[Agilent (2010). CrysAlis PRO. Agilent Technologies, Yarnton, England.]) Tmin = 0.962, Tmax = 0.998

  • 12061 measured reflections

  • 4905 independent reflections

  • 2305 reflections with I > 2σ(I)

  • Rint = 0.093

Refinement
  • R[F2 > 2σ(F2)] = 0.068

  • wR(F2) = 0.149

  • S = 0.95

  • 4905 reflections

  • 445 parameters

  • 2 restraints

  • H atoms treated by a mixture of independent and constrained refinement

  • Δρmax = 0.25 e Å−3

  • Δρmin = −0.28 e Å−3

Table 1
Hydrogen-bond geometry (Å, °)

D—H⋯A D—H H⋯A DA D—H⋯A
O5—H5⋯O4 0.84 (1) 1.82 (2) 2.596 (4) 153 (4)
O10—H10⋯O9 0.84 (1) 1.77 (3) 2.552 (4) 153 (6)

Data collection: CrysAlis PRO (Agilent, 2010[Agilent (2010). CrysAlis PRO. Agilent Technologies, Yarnton, England.]); cell refinement: CrysAlis PRO; data reduction: CrysAlis PRO; program(s) used to solve structure: SHELXS97 (Sheldrick, 2008[Sheldrick, G. M. (2008). Acta Cryst. A64, 112-122.]); program(s) used to refine structure: SHELXL97 (Sheldrick, 2008[Sheldrick, G. M. (2008). Acta Cryst. A64, 112-122.]); molecular graphics: X-SEED (Barbour, 2001[Barbour, L. J. (2001). J. Supramol. Chem. 1, 189-191.]); software used to prepare material for publication: publCIF (Westrip, 2010[Westrip, S. P. (2010). J. Appl. Cryst. 43, 920-925.]).

Supporting information


Comment top

The title compound (Scheme I) is one of the intermediates of the multi-stepsynthesis of a substituted isobenzofuran from anthradifuran (Boddy et al., 1986). In the present microwave-assisted synthesis, even the 1,4-dihdyroanthraquinone reactant can be prepared under microwave conditions.

The two independent molecules C19H12O5 (Fig. 1 and Fig. 2) are both slightly buckled along an axis passing through the CO bonds of the anthraquinone ring-system; for one molecule, the benzene rings are twisted by 4.3 (3) ° and for the other, the benzene rings are twisted by 10.6 (3)°. The two independent molecules interact by ππ stacking with a centroid-to-centroid distance of 3.539 (2) Å between hydroxybenzene rings of adjacent molecules.

Related literature top

For background to the synthesis, see: Boddy et al. (1986).

Experimental top

Phthalic anhydride (0.001 mol) and hydroquinone (0.001 mol) were reacted over montmorillonite K10 clay (without any solvent) in a microwave oven. The reactants were subject to microwave radiation for 1 h. This afforded 1,4-dihydroxyanthraquinone in 95% yield. In the next step, acetylacetone (0.001 mol) was added to the prepared 1,4-dihydroxyanthraquinone (0.001 mol) in the presence of 4-dimethylaminopyridine (0.01 mol). The mixture was agained subject to microwave irradiation (100% power level for 1 h) to give the title compound, whose formulation was established by 1H NMR spectroscopy; yield 95% yield. Orange crystals were obtained by recrystallization from a hexane-chloroform (5:95) mixture.

Refinement top

Carbon-bound H-atoms were placed in calculated positions [C—H 0.95 to 0.98 Å, Uiso(H) 1.2 to 1.5Ueq(C)] and were included in the refinement in the riding model approximation.

The hydroxy H-atoms were located in a difference Fourier map, and were refined with distance restraints of O–H 0.84±0.01 Å; their temperature factors were refined.

Computing details top

Data collection: CrysAlis PRO (Agilent, 2010); cell refinement: CrysAlis PRO (Agilent, 2010); data reduction: CrysAlis PRO (Agilent, 2010); program(s) used to solve structure: SHELXS97 (Sheldrick, 2008); program(s) used to refine structure: SHELXL97 (Sheldrick, 2008); molecular graphics: X-SEED (Barbour, 2001); software used to prepare material for publication: publCIF (Westrip, 2010).

Figures top
[Figure 1] Fig. 1. Thermal ellipsoid plot (Barbour, 2001) of one independent molecule of C19H12O5 at the 70% probability level; hydrogen atoms are drawn as spheres of arbitrary radius.
[Figure 2] Fig. 2. Thermal ellipsoid plot (Barbour, 2001) of second independent molecule of C19H12O5 at the 70% probability level; hydrogen atoms are drawn as spheres of arbitrary radius.
[Figure 3] Fig. 3. ππ Stacking of the two independent molecules of C19H12O5.
3-Acetyl-5-hydroxy-2-methylanthra[1,2-b]furan-6,11-dione top
Crystal data top
C19H12O5F(000) = 1328
Mr = 320.29Dx = 1.524 Mg m3
Monoclinic, P21/cMo Kα radiation, λ = 0.71073 Å
Hall symbol: -P 2ybcCell parameters from 1530 reflections
a = 12.5739 (9) Åθ = 2.2–29.1°
b = 22.0375 (12) ŵ = 0.11 mm1
c = 10.7453 (8) ÅT = 100 K
β = 110.342 (8)°Plate, orange
V = 2791.8 (3) Å30.35 × 0.05 × 0.02 mm
Z = 8
Data collection top
Agilent SuperNova Dual
diffractometer with an Atlas detector
4905 independent reflections
Radiation source: SuperNova (Mo) X-ray Source2305 reflections with I > 2σ(I)
Mirror monochromatorRint = 0.093
Detector resolution: 10.4041 pixels mm-1θmax = 25.0°, θmin = 2.2°
ω scansh = 1414
Absorption correction: multi-scan
(CrysAlis PRO; Agilent, 2010)
k = 2621
Tmin = 0.962, Tmax = 0.998l = 129
12061 measured reflections
Refinement top
Refinement on F2Primary atom site location: structure-invariant direct methods
Least-squares matrix: fullSecondary atom site location: difference Fourier map
R[F2 > 2σ(F2)] = 0.068Hydrogen site location: inferred from neighbouring sites
wR(F2) = 0.149H atoms treated by a mixture of independent and constrained refinement
S = 0.95 w = 1/[σ2(Fo2) + (0.029P)2]
where P = (Fo2 + 2Fc2)/3
4905 reflections(Δ/σ)max = 0.001
445 parametersΔρmax = 0.25 e Å3
2 restraintsΔρmin = 0.28 e Å3
Crystal data top
C19H12O5V = 2791.8 (3) Å3
Mr = 320.29Z = 8
Monoclinic, P21/cMo Kα radiation
a = 12.5739 (9) ŵ = 0.11 mm1
b = 22.0375 (12) ÅT = 100 K
c = 10.7453 (8) Å0.35 × 0.05 × 0.02 mm
β = 110.342 (8)°
Data collection top
Agilent SuperNova Dual
diffractometer with an Atlas detector
4905 independent reflections
Absorption correction: multi-scan
(CrysAlis PRO; Agilent, 2010)
2305 reflections with I > 2σ(I)
Tmin = 0.962, Tmax = 0.998Rint = 0.093
12061 measured reflections
Refinement top
R[F2 > 2σ(F2)] = 0.0682 restraints
wR(F2) = 0.149H atoms treated by a mixture of independent and constrained refinement
S = 0.95Δρmax = 0.25 e Å3
4905 reflectionsΔρmin = 0.28 e Å3
445 parameters
Fractional atomic coordinates and isotropic or equivalent isotropic displacement parameters (Å2) top
xyzUiso*/Ueq
O10.1639 (2)0.63359 (13)0.4656 (3)0.0307 (8)
O20.1956 (2)0.42672 (12)0.4828 (3)0.0225 (7)
O30.1802 (2)0.32131 (13)0.6137 (3)0.0308 (8)
O40.0110 (2)0.44812 (14)0.9299 (3)0.0406 (9)
O50.0397 (3)0.55000 (14)0.8246 (3)0.0303 (8)
O60.4668 (2)0.26821 (13)0.8213 (3)0.0361 (8)
O70.3238 (2)0.41683 (13)1.0149 (3)0.0256 (7)
O80.2983 (2)0.53832 (13)1.0463 (3)0.0315 (8)
O90.4542 (2)0.58374 (13)0.6465 (3)0.0297 (8)
O100.4846 (3)0.47096 (16)0.6165 (3)0.0313 (8)
C10.2569 (4)0.60289 (19)0.3177 (5)0.0344 (13)
H1A0.25540.64640.29860.052*
H1B0.21670.58070.23580.052*
H1C0.33570.58890.35370.052*
C20.2001 (3)0.5916 (2)0.4175 (4)0.0242 (11)
C30.1909 (3)0.52918 (19)0.4607 (4)0.0218 (11)
C40.2152 (3)0.4754 (2)0.4141 (4)0.0235 (11)
C50.2569 (3)0.4558 (2)0.3062 (4)0.0291 (11)
H5A0.31270.42320.33900.044*
H5B0.29250.49040.27840.044*
H5C0.19300.44110.23040.044*
C60.1547 (3)0.45001 (19)0.5772 (4)0.0205 (10)
C70.1232 (3)0.41721 (18)0.6675 (4)0.0195 (10)
C80.1320 (3)0.3503 (2)0.6764 (4)0.0249 (11)
C90.0804 (3)0.31883 (19)0.7640 (4)0.0240 (11)
C100.0730 (3)0.2559 (2)0.7613 (4)0.0302 (12)
H10A0.10460.23330.70730.036*
C110.0198 (4)0.2258 (2)0.8367 (5)0.0373 (13)
H110.01440.18280.83390.045*
C120.0259 (4)0.2590 (2)0.9169 (5)0.0370 (13)
H120.06350.23850.96760.044*
C130.0167 (3)0.3215 (2)0.9230 (4)0.0302 (12)
H130.04550.34380.97990.036*
C140.0356 (3)0.3520 (2)0.8445 (4)0.0249 (11)
C150.0417 (3)0.4196 (2)0.8474 (4)0.0280 (12)
C160.0813 (3)0.45079 (19)0.7526 (4)0.0219 (10)
C170.0767 (3)0.5151 (2)0.7443 (4)0.0223 (11)
C180.1098 (3)0.54647 (19)0.6509 (4)0.0210 (10)
H180.10590.58950.64590.025*
C190.1483 (3)0.51364 (18)0.5662 (4)0.0178 (10)
C200.3954 (4)0.22087 (18)0.9754 (4)0.0335 (12)
H20A0.42950.18440.95280.050*
H20B0.31330.21500.95020.050*
H20C0.42840.22821.07120.050*
C210.4183 (4)0.2744 (2)0.9022 (4)0.0273 (11)
C220.3851 (3)0.33562 (18)0.9271 (4)0.0216 (10)
C230.3357 (3)0.35386 (19)1.0167 (4)0.0232 (11)
C240.2934 (4)0.32387 (19)1.1114 (4)0.0331 (12)
H24A0.26590.28321.07890.050*
H24B0.23100.34771.12150.050*
H24C0.35480.32061.19750.050*
C250.3663 (3)0.43878 (19)0.9207 (4)0.0211 (10)
C260.3693 (3)0.49820 (19)0.8854 (4)0.0188 (10)
C270.3289 (3)0.54833 (19)0.9518 (4)0.0223 (10)
C280.3271 (3)0.61072 (19)0.8981 (4)0.0223 (11)
C290.2850 (4)0.65801 (19)0.9521 (5)0.0303 (12)
H290.25850.65061.02350.036*
C300.2814 (4)0.7162 (2)0.9015 (5)0.0341 (12)
H300.25030.74850.93640.041*
C310.3238 (4)0.7273 (2)0.7989 (5)0.0346 (12)
H310.32320.76730.76580.042*
C320.3665 (3)0.6800 (2)0.7460 (5)0.0309 (12)
H320.39420.68740.67560.037*
C330.3689 (3)0.62214 (19)0.7951 (4)0.0203 (10)
C340.4148 (3)0.5720 (2)0.7356 (4)0.0249 (11)
C350.4106 (3)0.51037 (19)0.7802 (4)0.0193 (10)
C360.4479 (3)0.46163 (19)0.7192 (4)0.0216 (10)
C370.4450 (3)0.4014 (2)0.7599 (4)0.0246 (11)
H370.47050.36920.71870.030*
C380.4041 (3)0.39022 (19)0.8614 (4)0.0218 (11)
H50.022 (3)0.5247 (15)0.873 (4)0.034 (15)*
H100.478 (5)0.5087 (7)0.603 (6)0.09 (2)*
Atomic displacement parameters (Å2) top
U11U22U33U12U13U23
O10.0392 (19)0.0233 (18)0.030 (2)0.0006 (15)0.0133 (16)0.0033 (16)
O20.0276 (17)0.0213 (17)0.0210 (18)0.0004 (14)0.0117 (14)0.0014 (14)
O30.0354 (19)0.0278 (19)0.031 (2)0.0003 (15)0.0138 (16)0.0033 (16)
O40.051 (2)0.047 (2)0.037 (2)0.0000 (17)0.0321 (19)0.0083 (18)
O50.0377 (19)0.031 (2)0.029 (2)0.0037 (17)0.0201 (17)0.0064 (17)
O60.048 (2)0.0312 (19)0.036 (2)0.0053 (17)0.0242 (18)0.0004 (17)
O70.0329 (18)0.0278 (19)0.0185 (18)0.0013 (15)0.0118 (15)0.0035 (15)
O80.045 (2)0.0299 (19)0.024 (2)0.0007 (16)0.0181 (17)0.0013 (16)
O90.0312 (18)0.036 (2)0.028 (2)0.0023 (15)0.0180 (16)0.0068 (16)
O100.0380 (19)0.037 (2)0.027 (2)0.0013 (18)0.0215 (16)0.0040 (18)
C10.047 (3)0.024 (3)0.039 (3)0.003 (2)0.023 (3)0.008 (2)
C20.022 (2)0.029 (3)0.020 (3)0.003 (2)0.007 (2)0.000 (2)
C30.020 (2)0.025 (3)0.020 (3)0.001 (2)0.007 (2)0.003 (2)
C40.021 (2)0.029 (3)0.019 (3)0.001 (2)0.004 (2)0.002 (2)
C50.033 (3)0.033 (3)0.029 (3)0.001 (2)0.020 (2)0.001 (2)
C60.017 (2)0.027 (3)0.016 (3)0.002 (2)0.004 (2)0.004 (2)
C70.015 (2)0.024 (3)0.016 (3)0.002 (2)0.0015 (19)0.002 (2)
C80.022 (2)0.032 (3)0.017 (3)0.001 (2)0.003 (2)0.000 (2)
C90.022 (2)0.031 (3)0.015 (3)0.002 (2)0.001 (2)0.001 (2)
C100.029 (3)0.034 (3)0.025 (3)0.000 (2)0.006 (2)0.005 (2)
C110.042 (3)0.036 (3)0.029 (3)0.003 (3)0.006 (3)0.011 (3)
C120.036 (3)0.046 (3)0.028 (3)0.003 (3)0.010 (2)0.016 (3)
C130.029 (3)0.044 (3)0.020 (3)0.001 (2)0.011 (2)0.002 (2)
C140.020 (2)0.033 (3)0.019 (3)0.002 (2)0.005 (2)0.004 (2)
C150.025 (3)0.039 (3)0.024 (3)0.003 (2)0.014 (2)0.004 (2)
C160.016 (2)0.029 (3)0.020 (3)0.002 (2)0.007 (2)0.000 (2)
C170.020 (2)0.035 (3)0.015 (3)0.001 (2)0.009 (2)0.006 (2)
C180.021 (2)0.020 (2)0.020 (3)0.002 (2)0.005 (2)0.006 (2)
C190.010 (2)0.023 (3)0.015 (3)0.002 (2)0.0008 (19)0.002 (2)
C200.053 (3)0.024 (3)0.029 (3)0.004 (2)0.020 (3)0.003 (2)
C210.031 (3)0.025 (3)0.023 (3)0.002 (2)0.006 (2)0.007 (2)
C220.022 (2)0.023 (3)0.018 (3)0.004 (2)0.005 (2)0.000 (2)
C230.025 (2)0.018 (3)0.021 (3)0.003 (2)0.002 (2)0.001 (2)
C240.045 (3)0.028 (3)0.031 (3)0.006 (2)0.019 (2)0.003 (2)
C250.014 (2)0.028 (3)0.017 (3)0.000 (2)0.0006 (19)0.005 (2)
C260.012 (2)0.024 (3)0.019 (3)0.003 (2)0.0029 (19)0.002 (2)
C270.023 (2)0.029 (3)0.013 (3)0.002 (2)0.004 (2)0.003 (2)
C280.021 (2)0.026 (3)0.019 (3)0.003 (2)0.005 (2)0.000 (2)
C290.038 (3)0.027 (3)0.027 (3)0.001 (2)0.013 (2)0.002 (2)
C300.041 (3)0.026 (3)0.040 (3)0.004 (2)0.020 (3)0.004 (2)
C310.044 (3)0.019 (3)0.044 (4)0.001 (2)0.019 (3)0.002 (2)
C320.032 (3)0.031 (3)0.033 (3)0.006 (2)0.016 (2)0.001 (3)
C330.017 (2)0.022 (3)0.020 (3)0.004 (2)0.003 (2)0.001 (2)
C340.018 (2)0.034 (3)0.017 (3)0.005 (2)0.001 (2)0.001 (2)
C350.014 (2)0.023 (3)0.020 (3)0.002 (2)0.005 (2)0.005 (2)
C360.014 (2)0.026 (3)0.024 (3)0.003 (2)0.006 (2)0.001 (2)
C370.022 (2)0.032 (3)0.023 (3)0.000 (2)0.012 (2)0.003 (2)
C380.016 (2)0.025 (3)0.020 (3)0.002 (2)0.000 (2)0.003 (2)
Geometric parameters (Å, º) top
O1—C21.223 (5)C13—H130.9500
O2—C41.373 (5)C14—C151.492 (6)
O2—C61.385 (4)C15—C161.453 (6)
O3—C81.230 (5)C16—C171.420 (6)
O4—C151.252 (5)C17—C181.396 (5)
O5—C171.354 (5)C18—C191.375 (5)
O5—H50.84 (1)C18—H180.9500
O6—C211.231 (5)C20—C211.501 (6)
O7—C251.385 (5)C20—H20A0.9800
O7—C231.395 (5)C20—H20B0.9800
O8—C271.224 (5)C20—H20C0.9800
O9—C341.248 (5)C21—C221.464 (6)
O10—C361.352 (5)C22—C231.375 (6)
O10—H100.84 (1)C22—C381.456 (5)
C1—C21.502 (5)C23—C241.461 (5)
C1—H1A0.9800C24—H24A0.9800
C1—H1B0.9800C24—H24B0.9800
C1—H1C0.9800C24—H24C0.9800
C2—C31.469 (6)C25—C261.368 (5)
C3—C41.361 (5)C25—C381.410 (5)
C3—C191.453 (5)C26—C351.424 (5)
C4—C51.493 (5)C26—C271.496 (5)
C5—H5A0.9800C27—C281.488 (6)
C5—H5B0.9800C28—C291.385 (5)
C5—H5C0.9800C28—C331.403 (5)
C6—C71.374 (5)C29—C301.388 (6)
C6—C191.407 (5)C29—H290.9500
C7—C161.413 (5)C30—C311.403 (6)
C7—C81.479 (6)C30—H300.9500
C8—C91.487 (6)C31—C321.383 (6)
C9—C101.390 (6)C31—H310.9500
C9—C141.393 (5)C32—C331.375 (6)
C10—C111.386 (6)C32—H320.9500
C10—H10A0.9500C33—C341.490 (5)
C11—C121.397 (6)C34—C351.447 (6)
C11—H110.9500C35—C361.420 (5)
C12—C131.383 (6)C36—C371.401 (6)
C12—H120.9500C37—C381.380 (5)
C13—C141.407 (5)C37—H370.9500
C4—O2—C6106.6 (3)C18—C19—C3134.6 (4)
C17—O5—H5104 (3)C6—C19—C3105.9 (4)
C25—O7—C23106.9 (3)C21—C20—H20A109.5
C36—O10—H10104 (4)C21—C20—H20B109.5
C2—C1—H1A109.5H20A—C20—H20B109.5
C2—C1—H1B109.5C21—C20—H20C109.5
H1A—C1—H1B109.5H20A—C20—H20C109.5
C2—C1—H1C109.5H20B—C20—H20C109.5
H1A—C1—H1C109.5O6—C21—C22118.3 (4)
H1B—C1—H1C109.5O6—C21—C20121.1 (4)
O1—C2—C3119.6 (4)C22—C21—C20120.6 (4)
O1—C2—C1121.0 (4)C23—C22—C38106.7 (4)
C3—C2—C1119.4 (4)C23—C22—C21128.6 (4)
C4—C3—C19105.8 (4)C38—C22—C21124.6 (4)
C4—C3—C2130.3 (4)C22—C23—O7110.7 (4)
C19—C3—C2123.9 (4)C22—C23—C24135.9 (4)
C3—C4—O2112.2 (4)O7—C23—C24113.4 (4)
C3—C4—C5136.2 (4)C23—C24—H24A109.5
O2—C4—C5111.6 (4)C23—C24—H24B109.5
C4—C5—H5A109.5H24A—C24—H24B109.5
C4—C5—H5B109.5C23—C24—H24C109.5
H5A—C5—H5B109.5H24A—C24—H24C109.5
C4—C5—H5C109.5H24B—C24—H24C109.5
H5A—C5—H5C109.5C26—C25—O7126.3 (4)
H5B—C5—H5C109.5C26—C25—C38123.7 (4)
C7—C6—O2126.4 (4)O7—C25—C38110.0 (4)
C7—C6—C19124.1 (4)C25—C26—C35117.0 (4)
O2—C6—C19109.4 (4)C25—C26—C27121.9 (4)
C6—C7—C16116.5 (4)C35—C26—C27121.2 (4)
C6—C7—C8122.5 (4)O8—C27—C28121.4 (4)
C16—C7—C8121.1 (4)O8—C27—C26121.3 (4)
O3—C8—C7121.5 (4)C28—C27—C26117.3 (4)
O3—C8—C9120.7 (4)C29—C28—C33119.9 (4)
C7—C8—C9117.8 (4)C29—C28—C27119.3 (4)
C10—C9—C14119.9 (4)C33—C28—C27120.8 (4)
C10—C9—C8119.6 (4)C28—C29—C30119.8 (4)
C14—C9—C8120.5 (4)C28—C29—H29120.1
C11—C10—C9120.5 (4)C30—C29—H29120.1
C11—C10—H10A119.8C29—C30—C31120.0 (4)
C9—C10—H10A119.8C29—C30—H30120.0
C10—C11—C12119.8 (4)C31—C30—H30120.0
C10—C11—H11120.1C32—C31—C30120.0 (4)
C12—C11—H11120.1C32—C31—H31120.0
C13—C12—C11120.3 (4)C30—C31—H31120.0
C13—C12—H12119.9C33—C32—C31120.1 (4)
C11—C12—H12119.9C33—C32—H32120.0
C12—C13—C14119.8 (4)C31—C32—H32120.0
C12—C13—H13120.1C32—C33—C28120.3 (4)
C14—C13—H13120.1C32—C33—C34118.9 (4)
C9—C14—C13119.7 (4)C28—C33—C34120.8 (4)
C9—C14—C15120.6 (4)O9—C34—C35121.3 (4)
C13—C14—C15119.7 (4)O9—C34—C33119.4 (4)
O4—C15—C16121.6 (4)C35—C34—C33119.3 (4)
O4—C15—C14119.3 (4)C26—C35—C36119.6 (4)
C16—C15—C14119.0 (4)C26—C35—C34120.3 (4)
C7—C16—C17119.9 (4)C36—C35—C34120.0 (4)
C7—C16—C15120.1 (4)O10—C36—C37116.9 (4)
C17—C16—C15120.0 (4)O10—C36—C35121.5 (4)
O5—C17—C18115.6 (4)C37—C36—C35121.6 (4)
O5—C17—C16122.8 (4)C38—C37—C36118.2 (4)
C18—C17—C16121.6 (4)C38—C37—H37120.9
C19—C18—C17118.5 (4)C36—C37—H37120.9
C19—C18—H18120.8C37—C38—C25119.9 (4)
C17—C18—H18120.8C37—C38—C22134.4 (4)
C18—C19—C6119.5 (4)C25—C38—C22105.7 (3)
O1—C2—C3—C4173.4 (4)O6—C21—C22—C23176.5 (4)
C1—C2—C3—C48.3 (7)C20—C21—C22—C232.5 (7)
O1—C2—C3—C194.8 (6)O6—C21—C22—C380.8 (7)
C1—C2—C3—C19173.4 (4)C20—C21—C22—C38179.8 (4)
C19—C3—C4—O21.9 (5)C38—C22—C23—O71.3 (5)
C2—C3—C4—O2179.6 (4)C21—C22—C23—O7176.4 (4)
C19—C3—C4—C5177.4 (5)C38—C22—C23—C24178.7 (5)
C2—C3—C4—C51.1 (8)C21—C22—C23—C243.6 (9)
C6—O2—C4—C31.0 (4)C25—O7—C23—C220.5 (5)
C6—O2—C4—C5178.5 (3)C25—O7—C23—C24179.5 (3)
C4—O2—C6—C7179.6 (4)C23—O7—C25—C26178.8 (4)
C4—O2—C6—C190.4 (4)C23—O7—C25—C380.6 (4)
O2—C6—C7—C16178.5 (4)O7—C25—C26—C35176.4 (4)
C19—C6—C7—C160.5 (6)C38—C25—C26—C351.7 (6)
O2—C6—C7—C81.4 (7)O7—C25—C26—C272.4 (6)
C19—C6—C7—C8179.6 (4)C38—C25—C26—C27179.5 (4)
C6—C7—C8—O38.5 (6)C25—C26—C27—O84.7 (6)
C16—C7—C8—O3171.5 (4)C35—C26—C27—O8176.5 (4)
C6—C7—C8—C9171.4 (4)C25—C26—C27—C28175.1 (4)
C16—C7—C8—C98.5 (6)C35—C26—C27—C283.7 (6)
O3—C8—C9—C108.8 (6)O8—C27—C28—C293.1 (6)
C7—C8—C9—C10171.2 (4)C26—C27—C28—C29176.7 (4)
O3—C8—C9—C14173.8 (4)O8—C27—C28—C33176.1 (4)
C7—C8—C9—C146.3 (6)C26—C27—C28—C334.1 (6)
C14—C9—C10—C110.9 (6)C33—C28—C29—C301.7 (6)
C8—C9—C10—C11176.5 (4)C27—C28—C29—C30179.1 (4)
C9—C10—C11—C120.5 (7)C28—C29—C30—C312.0 (7)
C10—C11—C12—C131.0 (7)C29—C30—C31—C321.6 (7)
C11—C12—C13—C142.1 (7)C30—C31—C32—C330.9 (7)
C10—C9—C14—C130.2 (6)C31—C32—C33—C280.6 (7)
C8—C9—C14—C13177.6 (4)C31—C32—C33—C34179.7 (4)
C10—C9—C14—C15179.3 (4)C29—C28—C33—C321.0 (6)
C8—C9—C14—C151.8 (6)C27—C28—C33—C32179.8 (4)
C12—C13—C14—C91.7 (6)C29—C28—C33—C34179.9 (4)
C12—C13—C14—C15177.7 (4)C27—C28—C33—C340.7 (6)
C9—C14—C15—O4173.1 (4)C32—C33—C34—O92.9 (6)
C13—C14—C15—O47.5 (6)C28—C33—C34—O9178.1 (4)
C9—C14—C15—C168.0 (6)C32—C33—C34—C35175.8 (4)
C13—C14—C15—C16171.4 (4)C28—C33—C34—C353.3 (6)
C6—C7—C16—C171.8 (6)C25—C26—C35—C361.0 (6)
C8—C7—C16—C17178.3 (4)C27—C26—C35—C36179.8 (4)
C6—C7—C16—C15177.5 (4)C25—C26—C35—C34179.0 (4)
C8—C7—C16—C152.4 (6)C27—C26—C35—C340.2 (6)
O4—C15—C16—C7175.3 (4)O9—C34—C35—C26177.7 (4)
C14—C15—C16—C75.8 (6)C33—C34—C35—C263.7 (6)
O4—C15—C16—C175.4 (7)O9—C34—C35—C362.3 (6)
C14—C15—C16—C17173.5 (4)C33—C34—C35—C36176.3 (4)
C7—C16—C17—O5178.6 (4)C26—C35—C36—O10178.0 (4)
C15—C16—C17—O52.1 (6)C34—C35—C36—O102.0 (6)
C7—C16—C17—C181.9 (6)C26—C35—C36—C370.0 (6)
C15—C16—C17—C18177.5 (4)C34—C35—C36—C37180.0 (4)
O5—C17—C18—C19180.0 (3)O10—C36—C37—C38177.7 (4)
C16—C17—C18—C190.5 (6)C35—C36—C37—C380.3 (6)
C17—C18—C19—C60.9 (6)C36—C37—C38—C250.3 (6)
C17—C18—C19—C3178.7 (4)C36—C37—C38—C22177.9 (4)
C7—C6—C19—C180.9 (6)C26—C25—C38—C371.3 (6)
O2—C6—C19—C18179.9 (3)O7—C25—C38—C37177.0 (4)
C7—C6—C19—C3179.3 (4)C26—C25—C38—C22179.6 (4)
O2—C6—C19—C31.5 (5)O7—C25—C38—C221.3 (4)
C4—C3—C19—C18179.9 (4)C23—C22—C38—C37176.4 (5)
C2—C3—C19—C181.3 (7)C21—C22—C38—C375.9 (7)
C4—C3—C19—C62.1 (5)C23—C22—C38—C251.5 (4)
C2—C3—C19—C6179.3 (4)C21—C22—C38—C25176.2 (4)
Hydrogen-bond geometry (Å, º) top
D—H···AD—HH···AD···AD—H···A
O5—H5···O40.84 (1)1.82 (2)2.596 (4)153 (4)
O10—H10···O90.84 (1)1.77 (3)2.552 (4)153 (6)

Experimental details

Crystal data
Chemical formulaC19H12O5
Mr320.29
Crystal system, space groupMonoclinic, P21/c
Temperature (K)100
a, b, c (Å)12.5739 (9), 22.0375 (12), 10.7453 (8)
β (°) 110.342 (8)
V3)2791.8 (3)
Z8
Radiation typeMo Kα
µ (mm1)0.11
Crystal size (mm)0.35 × 0.05 × 0.02
Data collection
DiffractometerAgilent SuperNova Dual
diffractometer with an Atlas detector
Absorption correctionMulti-scan
(CrysAlis PRO; Agilent, 2010)
Tmin, Tmax0.962, 0.998
No. of measured, independent and
observed [I > 2σ(I)] reflections
12061, 4905, 2305
Rint0.093
(sin θ/λ)max1)0.595
Refinement
R[F2 > 2σ(F2)], wR(F2), S 0.068, 0.149, 0.95
No. of reflections4905
No. of parameters445
No. of restraints2
H-atom treatmentH atoms treated by a mixture of independent and constrained refinement
Δρmax, Δρmin (e Å3)0.25, 0.28

Computer programs: CrysAlis PRO (Agilent, 2010), SHELXS97 (Sheldrick, 2008), SHELXL97 (Sheldrick, 2008), X-SEED (Barbour, 2001), publCIF (Westrip, 2010).

Hydrogen-bond geometry (Å, º) top
D—H···AD—HH···AD···AD—H···A
O5—H5···O40.84 (1)1.82 (2)2.596 (4)153 (4)
O10—H10···O90.84 (1)1.77 (3)2.552 (4)153 (6)
 

Acknowledgements

We thank the University of Malaya for supporting this study.

References

First citationAgilent (2010). CrysAlis PRO. Agilent Technologies, Yarnton, England.  Google Scholar
First citationBarbour, L. J. (2001). J. Supramol. Chem. 1, 189–191.  CrossRef CAS Google Scholar
First citationBoddy, I. K., Cambie, R. C., Rutledge, P. S. & Woodgate, P. D. (1986). Aust. J. Chem. 39, 2075–2088.  CrossRef CAS Google Scholar
First citationSheldrick, G. M. (2008). Acta Cryst. A64, 112–122.  Web of Science CrossRef CAS IUCr Journals Google Scholar
First citationWestrip, S. P. (2010). J. Appl. Cryst. 43, 920–925.  Web of Science CrossRef CAS IUCr Journals Google Scholar

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Volume 67| Part 5| May 2011| Page o1144
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