organic compounds\(\def\hfill{\hskip 5em}\def\hfil{\hskip 3em}\def\eqno#1{\hfil {#1}}\)

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ISSN: 2056-9890

1,2,3-Trimeth­­oxy-4,5,6-tri­nitro­benzene

aFachrichtung Chemie, Universität des Saarlandes, Postfach 151150, D-66041 Saarbrücken, Germany
*Correspondence e-mail: hegetschweiler@mx.uni-saarland.de

(Received 25 January 2012; accepted 3 February 2012; online 17 February 2012)

In the title mol­ecule, C9H9N3O9, the three neighbouring nitro groups are tilted with respect to the benzene mean plane by 75.8 (1), 27.7 (1) and 68.1 (1)°. The methyl C atoms of the three neighbouring meth­oxy groups deviate from this plane by 0.976 (4), −1.425 (4) and 0.632 (4) Å. The crystal packing exhibits weak C—H⋯O inter­actions.

Related literature

C—H⋯O hydrogen bonding has been reviewed by Castellano (2004[Castellano, R. K. (2004). Curr. Org. Chem. 8, 845-865.]). The use of aromatic polynitro compounds for the preparation of amino­cyclitols has been reported by Merten et al. (2012[Merten, G. J., Neis, C., Stucky, S., Huch, V., Rentschler, E., Natter, H., Hempelmann, R., Stöwe, K. & Hegetschweiler, K. (2012). Eur. J. Inorg. Chem. pp. 31-35.]). The crystal structures of related highly substituted polynitro benzene derivatives with three meth­oxy or hy­droxy groups in a 1,2,3-arrangement have been reported by Vicente et al. (2009[Vicente, J., Arcas, A., Galvez-Lopez, M.-D., Jones, P. G. & Bautista, D. (2009). Organometallics, 28, 3501-3517.]) and Neis et al. (2012[Neis, C., Merten, G. J. & Hegetschweiler, K. (2012). Acta Cryst. E68, o695.]), respectively.

[Scheme 1]

Experimental

Crystal data
  • C9H9N3O9

  • Mr = 303.19

  • Orthorhombic, P n a 21

  • a = 8.1743 (4) Å

  • b = 16.6121 (9) Å

  • c = 9.0856 (5) Å

  • V = 1233.75 (11) Å3

  • Z = 4

  • Mo Kα radiation

  • μ = 0.15 mm−1

  • T = 153 K

  • 0.18 × 0.15 × 0.11 mm

Data collection
  • Bruker APEXII KappaCCD diffractometer

  • Absorption correction: multi-scan (SADABS; Bruker, 2010[Bruker (2010). APEX2. Bruker AXS Inc., Madison, Wisconsin, USA.]) Tmin = 0.974, Tmax = 0.984

  • 10563 measured reflections

  • 1580 independent reflections

  • 1254 reflections with I > 2σ(I)

  • Rint = 0.041

Refinement
  • R[F2 > 2σ(F2)] = 0.034

  • wR(F2) = 0.081

  • S = 1.02

  • 1580 reflections

  • 193 parameters

  • 1 restraint

  • H-atom parameters constrained

  • Δρmax = 0.16 e Å−3

  • Δρmin = −0.23 e Å−3

Table 1
Hydrogen-bond geometry (Å, °)

D—H⋯A D—H H⋯A DA D—H⋯A
C9—H9B⋯O4i 0.98 2.53 3.450 (4) 156
C9—H9C⋯O9ii 0.98 2.59 3.536 (4) 161
C8—H8A⋯O5iii 0.98 2.44 3.352 (4) 154
Symmetry codes: (i) [x-{\script{1\over 2}}, -y+{\script{1\over 2}}, z]; (ii) x, y, z-1; (iii) [-x+{\script{3\over 2}}, y-{\script{1\over 2}}, z-{\script{1\over 2}}].

Data collection: APEX2 (Bruker, 2010[Bruker (2010). APEX2. Bruker AXS Inc., Madison, Wisconsin, USA.]); cell refinement: SAINT (Bruker, 2010[Bruker (2010). APEX2. Bruker AXS Inc., Madison, Wisconsin, USA.]); data reduction: SAINT; 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: DIAMOND (Brandenburg, 2011[Brandenburg, K. (2011). DIAMOND. Crystal Impact GbR, Bonn, Germany.]); software used to prepare material for publication: SHELXL97.

Supporting information


Comment top

Polynitrophenols and their methyl ethers are of interest as possible synthons for the preparation of corresponding aminocyclitols. The crystal structure of the title compound consists of wavy layers which are oriented parallel to the bc plane. In these layers, each molecule is surrounded by six neighbours, and the intermolecular contacts within these layers are mainly based on methoxy groups pointing to neighbouring nitro groups, indicating some weak C—H···O—N hydrogen bonding. Between the layers, some of the contacts such as O5···C1 (2.94 Å) are slightly shorter than the sum of the van der Waals radii. Similar to the structure of 4,6-dinitrobenzene-1,2,3-triol, this observation may indicate some weak donor acceptor interactions. However, it should be noted that the tilting of the nitro groups out of the aromatic plane, which is obviously enforced by the increased steric crowding, disfavours a closer approximation of aromatic moieties which are arranged in neighbouring layers.

Related literature top

C—H···O hydrogen bonding has been reviewed by Castellano (2004). The use of aromatic polynitro compounds for the preparation of aminocyclitols has been reported by Merten et al. (2012). The crystal structures of related highly substituted polynitro benzene derivatives with three methoxy or hydroxy groups in a 1,2,3-arrangement have been reported by Vicente et al. (2009) and Neis et al. (2012), respectively.

Experimental top

The title compound was obtained by nitration of 1,2,3-trimethoxybenzene. Caution: 1,2,3-trimethoxy-4,5,6-trinitrobenzene is a potential explosive. 1H NMR (CDCl3): δ (p.p.m.) = 4.10. 13C NMR (CDCl3): δ (p.p.m.) = 62.2, 63.4, 130.0, 135.4, 148.1, 151.7. Single crystals were grown by slow evaporation of a MeOH solution at room temperature.

Refinement top

In the absence of significant anomalous scatterers, 932 Friedel pairs were merged before the refinement. H atoms were geometrically positioned (C—H 0.98 Å) and refined as riding, with Uiso(H) = 1.5Ueq of the pivot atom.

Computing details top

Data collection: APEX2 (Bruker, 2010); cell refinement: SAINT (Bruker, 2010); data reduction: SAINT (Bruker, 2010); program(s) used to solve structure: SHELXS97 (Sheldrick, 2008); program(s) used to refine structure: SHELXL97 (Sheldrick, 2008); molecular graphics: DIAMOND (Brandenburg, 2011); software used to prepare material for publication: SHELXL97 (Sheldrick, 2008).

Figures top
[Figure 1] Fig. 1. Molecular structure of the title compound. Displacement ellipsoids are drawn at the 50% probability level.
1,2,3-Trimethoxy-4,5,6-trinitrobenzene top
Crystal data top
C9H9N3O9Dx = 1.632 Mg m3
Mr = 303.19Mo Kα radiation, λ = 0.71073 Å
Orthorhombic, Pna21Cell parameters from 2358 reflections
a = 8.1743 (4) Åθ = 2.6–22.6°
b = 16.6121 (9) ŵ = 0.15 mm1
c = 9.0856 (5) ÅT = 153 K
V = 1233.75 (11) Å3Prism, colourless
Z = 40.18 × 0.15 × 0.11 mm
F(000) = 624
Data collection top
Bruker APEXII KappaCCD
diffractometer
1580 independent reflections
Radiation source: fine-focus sealed tube1254 reflections with I > 2σ(I)
Graphite monochromatorRint = 0.041
ϕ and ω scansθmax = 28.0°, θmin = 2.5°
Absorption correction: multi-scan
(SADABS; Bruker, 2010)
h = 107
Tmin = 0.974, Tmax = 0.984k = 1721
10563 measured reflectionsl = 1211
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)] = 0.034Hydrogen site location: inferred from neighbouring sites
wR(F2) = 0.081H-atom parameters constrained
S = 1.02 w = 1/[σ2(Fo2) + (0.0427P)2 + 0.1255P]
where P = (Fo2 + 2Fc2)/3
1580 reflections(Δ/σ)max < 0.001
193 parametersΔρmax = 0.16 e Å3
1 restraintΔρmin = 0.23 e Å3
Crystal data top
C9H9N3O9V = 1233.75 (11) Å3
Mr = 303.19Z = 4
Orthorhombic, Pna21Mo Kα radiation
a = 8.1743 (4) ŵ = 0.15 mm1
b = 16.6121 (9) ÅT = 153 K
c = 9.0856 (5) Å0.18 × 0.15 × 0.11 mm
Data collection top
Bruker APEXII KappaCCD
diffractometer
1580 independent reflections
Absorption correction: multi-scan
(SADABS; Bruker, 2010)
1254 reflections with I > 2σ(I)
Tmin = 0.974, Tmax = 0.984Rint = 0.041
10563 measured reflections
Refinement top
R[F2 > 2σ(F2)] = 0.0341 restraint
wR(F2) = 0.081H-atom parameters constrained
S = 1.02Δρmax = 0.16 e Å3
1580 reflectionsΔρmin = 0.23 e Å3
193 parameters
Special details top

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.

Fractional atomic coordinates and isotropic or equivalent isotropic displacement parameters (Å2) top
xyzUiso*/Ueq
O10.7880 (2)0.02818 (11)0.3568 (2)0.0325 (5)
O20.7134 (2)0.08500 (12)0.0745 (2)0.0332 (5)
O30.6929 (3)0.25609 (12)0.0347 (2)0.0355 (5)
O40.8581 (2)0.38957 (11)0.1784 (3)0.0369 (5)
O50.6246 (2)0.39213 (12)0.2904 (3)0.0387 (5)
O60.8947 (3)0.36515 (13)0.5039 (2)0.0442 (6)
O70.8084 (3)0.27870 (13)0.6640 (2)0.0383 (5)
O80.9907 (3)0.13621 (13)0.6231 (3)0.0446 (6)
O90.7445 (3)0.08999 (15)0.6539 (2)0.0485 (6)
N10.7478 (3)0.35847 (12)0.2482 (3)0.0255 (5)
N20.8365 (3)0.30026 (14)0.5387 (3)0.0287 (5)
N30.8482 (3)0.12674 (13)0.5858 (3)0.0315 (5)
C10.7674 (3)0.10752 (16)0.3301 (3)0.0245 (6)
C20.7350 (3)0.13658 (16)0.1884 (3)0.0257 (6)
C30.7256 (3)0.22000 (17)0.1639 (3)0.0261 (5)
C40.7609 (3)0.27185 (16)0.2797 (3)0.0232 (6)
C50.7990 (3)0.24349 (16)0.4195 (3)0.0233 (5)
C60.7997 (3)0.16148 (17)0.4432 (3)0.0248 (6)
C70.6444 (4)0.02228 (17)0.3407 (4)0.0408 (7)
H7A0.59600.01360.24330.061*
H7B0.56430.00840.41680.061*
H7C0.67570.07890.35100.061*
C80.8624 (4)0.0513 (2)0.0168 (4)0.0471 (9)
H8A0.83640.01430.06380.071*
H8B0.91970.02210.09490.071*
H8C0.93240.09470.02020.071*
C90.5854 (4)0.21928 (19)0.0721 (3)0.0344 (7)
H9A0.54310.26070.13880.052*
H9B0.49410.19320.02110.052*
H9C0.64630.17900.12880.052*
Atomic displacement parameters (Å2) top
U11U22U33U12U13U23
O10.0388 (11)0.0224 (9)0.0362 (12)0.0018 (7)0.0039 (9)0.0010 (9)
O20.0433 (11)0.0329 (11)0.0235 (11)0.0015 (8)0.0006 (9)0.0110 (9)
O30.0506 (11)0.0346 (11)0.0212 (10)0.0119 (9)0.0101 (10)0.0024 (9)
O40.0423 (11)0.0325 (11)0.0360 (12)0.0070 (9)0.0115 (10)0.0034 (9)
O50.0322 (10)0.0330 (10)0.0508 (14)0.0058 (8)0.0067 (10)0.0058 (10)
O60.0585 (13)0.0411 (12)0.0331 (13)0.0237 (11)0.0018 (11)0.0075 (10)
O70.0596 (14)0.0359 (11)0.0195 (11)0.0048 (10)0.0007 (10)0.0029 (9)
O80.0416 (12)0.0522 (13)0.0401 (13)0.0123 (10)0.0188 (10)0.0059 (10)
O90.0640 (15)0.0502 (13)0.0312 (13)0.0101 (11)0.0018 (11)0.0120 (11)
N10.0282 (11)0.0268 (12)0.0216 (11)0.0023 (9)0.0006 (10)0.0046 (11)
N20.0285 (11)0.0332 (13)0.0245 (14)0.0013 (9)0.0035 (10)0.0063 (10)
N30.0431 (14)0.0274 (12)0.0240 (13)0.0073 (10)0.0068 (11)0.0033 (10)
C10.0227 (12)0.0268 (13)0.0240 (15)0.0017 (9)0.0008 (11)0.0022 (11)
C20.0274 (14)0.0264 (13)0.0234 (14)0.0009 (10)0.0003 (11)0.0052 (11)
C30.0268 (13)0.0326 (13)0.0188 (13)0.0028 (11)0.0012 (11)0.0023 (11)
C40.0216 (12)0.0248 (13)0.0232 (14)0.0018 (10)0.0024 (11)0.0009 (11)
C50.0204 (11)0.0276 (14)0.0218 (14)0.0013 (10)0.0009 (10)0.0066 (11)
C60.0240 (13)0.0306 (13)0.0198 (14)0.0041 (10)0.0027 (11)0.0007 (11)
C70.0532 (19)0.0317 (15)0.0376 (17)0.0101 (12)0.0055 (16)0.0010 (15)
C80.061 (2)0.0464 (19)0.0341 (19)0.0180 (16)0.0004 (15)0.0148 (15)
C90.0383 (16)0.0441 (17)0.0209 (14)0.0062 (12)0.0039 (12)0.0013 (13)
Geometric parameters (Å, º) top
O1—C11.351 (3)C1—C61.389 (4)
O1—C71.451 (3)C1—C21.400 (4)
O2—C21.355 (3)C2—C31.406 (4)
O2—C81.439 (4)C3—C41.390 (4)
O3—C31.345 (3)C4—C51.390 (4)
O3—C91.445 (3)C5—C61.379 (4)
O4—N11.218 (3)C7—H7A0.9800
O5—N11.214 (3)C7—H7B0.9800
O6—N21.220 (3)C7—H7C0.9800
O7—N21.215 (3)C8—H8A0.9800
O8—N31.224 (3)C8—H8B0.9800
O9—N31.214 (3)C8—H8C0.9800
N1—C41.471 (3)C9—H9A0.9800
N2—C51.469 (3)C9—H9B0.9800
N3—C61.472 (4)C9—H9C0.9800
C1—O1—C7116.4 (2)C6—C5—C4118.6 (2)
C2—O2—C8114.4 (2)C6—C5—N2121.2 (2)
C3—O3—C9121.2 (2)C4—C5—N2120.2 (2)
O5—N1—O4125.7 (2)C5—C6—C1121.4 (2)
O5—N1—C4116.7 (2)C5—C6—N3121.7 (2)
O4—N1—C4117.5 (2)C1—C6—N3116.7 (2)
O7—N2—O6125.2 (2)O1—C7—H7A109.5
O7—N2—C5117.5 (2)O1—C7—H7B109.5
O6—N2—C5117.2 (2)H7A—C7—H7B109.5
O9—N3—O8126.0 (3)O1—C7—H7C109.5
O9—N3—C6117.2 (2)H7A—C7—H7C109.5
O8—N3—C6116.7 (2)H7B—C7—H7C109.5
O1—C1—C6118.2 (2)O2—C8—H8A109.5
O1—C1—C2121.7 (2)O2—C8—H8B109.5
C6—C1—C2119.6 (2)H8A—C8—H8B109.5
O2—C2—C1120.6 (2)O2—C8—H8C109.5
O2—C2—C3119.7 (2)H8A—C8—H8C109.5
C1—C2—C3119.7 (2)H8B—C8—H8C109.5
O3—C3—C4115.2 (2)O3—C9—H9A109.5
O3—C3—C2126.1 (3)O3—C9—H9B109.5
C4—C3—C2118.7 (2)H9A—C9—H9B109.5
C3—C4—C5121.9 (2)O3—C9—H9C109.5
C3—C4—N1116.4 (2)H9A—C9—H9C109.5
C5—C4—N1121.7 (2)H9B—C9—H9C109.5
C7—O1—C1—C6119.7 (3)O4—N1—C4—C5106.2 (3)
C7—O1—C1—C268.4 (3)C3—C4—C5—C60.7 (4)
C8—O2—C2—C177.5 (3)N1—C4—C5—C6176.2 (2)
C8—O2—C2—C3102.2 (3)C3—C4—C5—N2179.7 (2)
O1—C1—C2—O24.1 (4)N1—C4—C5—N23.5 (4)
C6—C1—C2—O2175.8 (2)O7—N2—C5—C626.9 (4)
O1—C1—C2—C3175.6 (2)O6—N2—C5—C6152.5 (3)
C6—C1—C2—C33.9 (4)O7—N2—C5—C4152.7 (2)
C9—O3—C3—C4151.0 (2)O6—N2—C5—C427.9 (3)
C9—O3—C3—C232.6 (4)C4—C5—C6—C11.6 (4)
O2—C2—C3—O31.4 (4)N2—C5—C6—C1178.7 (2)
C1—C2—C3—O3178.9 (2)C4—C5—C6—N3176.3 (2)
O2—C2—C3—C4175.0 (2)N2—C5—C6—N34.0 (4)
C1—C2—C3—C44.8 (4)O1—C1—C6—C5172.7 (2)
O3—C3—C4—C5179.3 (2)C2—C1—C6—C50.7 (4)
C2—C3—C4—C52.5 (4)O1—C1—C6—N32.3 (3)
O3—C3—C4—N13.7 (3)C2—C1—C6—N3174.3 (2)
C2—C3—C4—N1179.5 (2)O9—N3—C6—C5116.1 (3)
O5—N1—C4—C3101.0 (3)O8—N3—C6—C565.4 (3)
O4—N1—C4—C376.8 (3)O9—N3—C6—C169.0 (3)
O5—N1—C4—C576.0 (3)O8—N3—C6—C1109.5 (3)
Hydrogen-bond geometry (Å, º) top
D—H···AD—HH···AD···AD—H···A
C9—H9B···O4i0.982.533.450 (4)156
C9—H9C···O9ii0.982.593.536 (4)161
C8—H8A···O5iii0.982.443.352 (4)154
Symmetry codes: (i) x1/2, y+1/2, z; (ii) x, y, z1; (iii) x+3/2, y1/2, z1/2.

Experimental details

Crystal data
Chemical formulaC9H9N3O9
Mr303.19
Crystal system, space groupOrthorhombic, Pna21
Temperature (K)153
a, b, c (Å)8.1743 (4), 16.6121 (9), 9.0856 (5)
V3)1233.75 (11)
Z4
Radiation typeMo Kα
µ (mm1)0.15
Crystal size (mm)0.18 × 0.15 × 0.11
Data collection
DiffractometerBruker APEXII KappaCCD
diffractometer
Absorption correctionMulti-scan
(SADABS; Bruker, 2010)
Tmin, Tmax0.974, 0.984
No. of measured, independent and
observed [I > 2σ(I)] reflections
10563, 1580, 1254
Rint0.041
(sin θ/λ)max1)0.661
Refinement
R[F2 > 2σ(F2)], wR(F2), S 0.034, 0.081, 1.02
No. of reflections1580
No. of parameters193
No. of restraints1
H-atom treatmentH-atom parameters constrained
Δρmax, Δρmin (e Å3)0.16, 0.23

Computer programs: APEX2 (Bruker, 2010), SAINT (Bruker, 2010), SHELXS97 (Sheldrick, 2008), SHELXL97 (Sheldrick, 2008), DIAMOND (Brandenburg, 2011).

Hydrogen-bond geometry (Å, º) top
D—H···AD—HH···AD···AD—H···A
C9—H9B···O4i0.982.533.450 (4)155.9
C9—H9C···O9ii0.982.593.536 (4)161.1
C8—H8A···O5iii0.982.443.352 (4)154.0
Symmetry codes: (i) x1/2, y+1/2, z; (ii) x, y, z1; (iii) x+3/2, y1/2, z1/2.
 

Acknowledgements

The authors thank Dr Volker Huch (Universität des Saarlandes) for the collection of the data set.

References

First citationBrandenburg, K. (2011). DIAMOND. Crystal Impact GbR, Bonn, Germany.  Google Scholar
First citationBruker (2010). APEX2. Bruker AXS Inc., Madison, Wisconsin, USA.  Google Scholar
First citationCastellano, R. K. (2004). Curr. Org. Chem. 8, 845–865.  Web of Science CrossRef CAS Google Scholar
First citationMerten, G. J., Neis, C., Stucky, S., Huch, V., Rentschler, E., Natter, H., Hempelmann, R., Stöwe, K. & Hegetschweiler, K. (2012). Eur. J. Inorg. Chem. pp. 31–35.  Web of Science CSD CrossRef Google Scholar
First citationNeis, C., Merten, G. J. & Hegetschweiler, K. (2012). Acta Cryst. E68, o695.  CSD CrossRef IUCr Journals Google Scholar
First citationSheldrick, G. M. (2008). Acta Cryst. A64, 112–122.  Web of Science CrossRef CAS IUCr Journals Google Scholar
First citationVicente, J., Arcas, A., Galvez-Lopez, M.-D., Jones, P. G. & Bautista, D. (2009). Organometallics, 28, 3501–3517.  Web of Science CSD CrossRef CAS Google Scholar

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