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ISSN: 2056-9890

(3,6-Di­bromo-o-phenyl­ene)di­methanol

aKey Laboratory of Pesticides and Chemical Biology of the Ministry of Education, College of Chemistry, Central China Normal University, Wuhan 430079, People's Republic of China
*Correspondence e-mail: liqi20100906@163.com

(Received 15 December 2010; accepted 9 January 2011; online 15 January 2011)

The title compound, C8H8Br2O2, was synthesized from the hydrolysis of 1,4-dibromo-2,3-bis­(bromo­meth­yl)benzene. One intra­molecular O—H⋯O and two intra­molecular C—H⋯Br inter­actions occur. In the crystal, mol­ecules are linked into a chain running parallel to [010]. Adjacent chains are linked into a two-dimensional layer by a combination of inter­molecular O—H⋯O hydrogen bonds and C—H⋯π inter­actions.

Related literature

For the preparation of the title compound, see: Abad (2005[Abad, A. (2005). Synthesis, 19, 3355-3361.]); Lai & Yap, (1993[Lai, Y.-H. & Yap, A. H.-T. (1993). J. Chem. Soc. Perkin Trans. 2, pp. 1373-1377.]).

[Scheme 1]

Experimental

Crystal data
  • C8H8Br2O2

  • Mr = 295.96

  • Orthorhombic, P 21 21 21

  • a = 4.482 (2) Å

  • b = 9.123 (5) Å

  • c = 22.819 (11) Å

  • V = 933.0 (8) Å3

  • Z = 4

  • Mo Kα radiation

  • μ = 8.64 mm−1

  • T = 298 K

  • 0.20 × 0.10 × 0.10 mm

Data collection
  • Bruker SMART APEX diffractometer

  • Absorption correction: multi-scan (SADABS; Sheldrick, 2008[Sheldrick, G. M. (2008). Acta Cryst. A64, 112-122.]) Tmin = 0.277, Tmax = 0.479

  • 11471 measured reflections

  • 2300 independent reflections

  • 1795 reflections with I > 2σ(I)

  • Rint = 0.040

Refinement
  • R[F2 > 2σ(F2)] = 0.043

  • wR(F2) = 0.111

  • S = 1.05

  • 2300 reflections

  • 115 parameters

  • 2 restraints

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

  • Δρmax = 1.17 e Å−3

  • Δρmin = −0.60 e Å−3

  • Absolute structure: Flack (1983[Flack, H. D. (1983). Acta Cryst. A39, 876-881.]), 918 Friedel pairs

  • Flack parameter: 0.03 (2)

Table 1
Hydrogen-bond geometry (Å, °)

Cg1 is the centroid of the C1–C6 ring.

D—H⋯A D—H H⋯A DA D—H⋯A
C8—H8A⋯Br2 0.97 2.61 3.192 (6) 119
C7—H7B⋯Br1 0.97 2.66 3.169 (5) 114
O2—H2⋯O1i 0.82 (6) 1.92 (3) 2.703 (6) 160 (7)
O1—H1⋯O2 0.81 (6) 1.95 (4) 2.703 (6) 152 (7)
C8—H8BCg1ii 0.97 3.01 3.63(5) 123
Symmetry codes: (i) [-x+1, y-{\script{1\over 2}}, -z+{\script{1\over 2}}]; (ii) x+1, y, z.

Data collection: SMART (Bruker, 1997[Bruker (1997). SMART. Bruker AXS Inc., Madison, Wisconsin, USA.]); cell refinement: SAINT (Bruker, 1999[Bruker (1999). SAINT. 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: SHELXTL (Sheldrick, 2008[Sheldrick, G. M. (2008). Acta Cryst. A64, 112-122.]); software used to prepare material for publication: SHELXL97.

Supporting information


Comment top

Benzyl alcohol derivatives are important compounds as preservatives, dyes, fibers, and nylons. In our work, the hydrolysis of 1,4-dibromo-2,3-bis(bromomethyl)benzene gave rise to the dimethanol product reported here. The molecules of (3,6-dibromo-1,2-phenylene)dimethanol (Figure 1) are linked into a one-dimensional chain running parallel to the [010] direction by intra- and intermolecular O-H···O hydrogen bond interactions. The adjacent chains are linked into a two-dimensional layer by the combination of the O2—H2···O1(1 - x, y - 1/2, 1/2 - z) (Table 1) hydrogen bonds and C—H···π interaction (H8B (1+x,y,z)···Cg1 = 3.01 (1) Å, C8—H8B···Cg1 = 122.9°, Cg1 is the centroid defined by atoms C1—C6.)

Related literature top

For the preparation of the title compound, see: Abad et al. (2005); Lai et al. (1993).

Experimental top

The title compound was synthesized according to the reported literature (Abad et al., 2005 and Lai et al., 1993). The reaction of 1,4-dibromo-2,3-dimethylbenzene with N-bromosuccinimide in carbon tetrachloride in the presence of benzoyl peroxide under illumination and reflux gave 1,4-dibromo-2,3-bis(bromomethyl)benzene. Then 1,4-dibromo-2,3-bis(bromomethyl)benzene with NaOH in water at room temperature gave rise to (3,6-dibromo-1,2-phenylene)dimethanol . Crystals suitable for X-ray diffraction were grown by slow evaporation of a chloroform-methanol (5:1) solution of the title compound at room temperature.

Refinement top

All carbon H atoms were placed at their idealized positions with C-H = 0.93 Å (aromatic), 0.97 Å (methylene)) and Uiso(H) =1.2 Ueq(C) (aromatic and methylene). Hydrogen atoms bonded oxygen atoms were located from the Fourier difference maps and refined with the restraints of O—H=0.82 (1) Å and Uiso(H) =1.5 Ueq(O).

Computing details top

Data collection: SMART (Bruker, 1997); cell refinement: SAINT (Bruker, 1999); data reduction: SAINT (Bruker, 1999); 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: SHELXL97 (Sheldrick, 2008).

Figures top
[Figure 1] Fig. 1. A view of the title compound, showing the atom labelling scheme, with displacement ellipsoids drawn at the 30% probability level. H atoms are omitted for clarity.
(3,6-Dibromo-o-phenylene)dimethanol top
Crystal data top
C8H8Br2O2F(000) = 568
Mr = 295.96Dx = 2.107 Mg m3
Orthorhombic, P212121Mo Kα radiation, λ = 0.71073 Å
Hall symbol: P 2ac 2abCell parameters from 3167 reflections
a = 4.482 (2) Åθ = 2.4–24.1°
b = 9.123 (5) ŵ = 8.64 mm1
c = 22.819 (11) ÅT = 298 K
V = 933.0 (8) Å3Needle, colorless
Z = 40.20 × 0.10 × 0.10 mm
Data collection top
Bruker SMART APEX
diffractometer
2300 independent reflections
Radiation source: fine-focus sealed tube1795 reflections with I > 2σ(I)
Graphite monochromatorRint = 0.040
ϕ and ω scansθmax = 28.3°, θmin = 2.4°
Absorption correction: multi-scan
(SADABS; Sheldrick, 2008)
h = 55
Tmin = 0.277, Tmax = 0.479k = 1212
11471 measured reflectionsl = 3030
Refinement top
Refinement on F2Secondary atom site location: difference Fourier map
Least-squares matrix: fullHydrogen site location: inferred from neighbouring sites
R[F2 > 2σ(F2)] = 0.043H atoms treated by a mixture of independent and constrained refinement
wR(F2) = 0.111 w = 1/[σ2(Fo2) + (0.0525P)2 + 0.6273P]
where P = (Fo2 + 2Fc2)/3
S = 1.05(Δ/σ)max = 0.004
2300 reflectionsΔρmax = 1.17 e Å3
115 parametersΔρmin = 0.60 e Å3
2 restraintsAbsolute structure: Flack (1983), 918 Friedel pairs
Primary atom site location: structure-invariant direct methodsAbsolute structure parameter: 0.03 (2)
Crystal data top
C8H8Br2O2V = 933.0 (8) Å3
Mr = 295.96Z = 4
Orthorhombic, P212121Mo Kα radiation
a = 4.482 (2) ŵ = 8.64 mm1
b = 9.123 (5) ÅT = 298 K
c = 22.819 (11) Å0.20 × 0.10 × 0.10 mm
Data collection top
Bruker SMART APEX
diffractometer
2300 independent reflections
Absorption correction: multi-scan
(SADABS; Sheldrick, 2008)
1795 reflections with I > 2σ(I)
Tmin = 0.277, Tmax = 0.479Rint = 0.040
11471 measured reflections
Refinement top
R[F2 > 2σ(F2)] = 0.043H atoms treated by a mixture of independent and constrained refinement
wR(F2) = 0.111Δρmax = 1.17 e Å3
S = 1.05Δρmin = 0.60 e Å3
2300 reflectionsAbsolute structure: Flack (1983), 918 Friedel pairs
115 parametersAbsolute structure parameter: 0.03 (2)
2 restraints
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
Br10.30061 (15)0.81127 (6)0.06905 (3)0.0657 (2)
Br20.8120 (2)0.15549 (7)0.12029 (4)0.0930 (3)
C10.4665 (11)0.6246 (5)0.0868 (2)0.0422 (11)
C20.6474 (10)0.6045 (5)0.13420 (19)0.0380 (10)
C30.7599 (11)0.4622 (5)0.14561 (19)0.0443 (11)
C40.6766 (13)0.3496 (5)0.1078 (2)0.0518 (12)
C50.4952 (14)0.3730 (7)0.0605 (2)0.0593 (14)
H50.44390.29550.03600.071*
C60.3902 (13)0.5100 (7)0.0495 (2)0.0532 (13)
H60.26830.52700.01720.064*
C70.7251 (12)0.7281 (5)0.17504 (19)0.0466 (11)
H7A0.93240.71970.18680.056*
H7B0.70030.82090.15490.056*
C80.9546 (13)0.4374 (7)0.1983 (2)0.0566 (13)
H8A1.02510.33690.19820.068*
H8B1.12730.50130.19600.068*
O10.5374 (9)0.7250 (4)0.22612 (15)0.0555 (9)
H10.582 (16)0.651 (5)0.244 (3)0.083*
O20.7969 (9)0.4656 (4)0.25204 (16)0.0610 (9)
H20.680 (14)0.397 (6)0.250 (3)0.091*
Atomic displacement parameters (Å2) top
U11U22U33U12U13U23
Br10.0672 (3)0.0603 (3)0.0697 (3)0.0117 (3)0.0053 (3)0.0190 (3)
Br20.1119 (6)0.0401 (3)0.1269 (6)0.0091 (4)0.0183 (5)0.0023 (3)
C10.042 (3)0.042 (3)0.043 (2)0.004 (2)0.006 (2)0.0020 (19)
C20.031 (2)0.040 (2)0.042 (2)0.0079 (18)0.0103 (19)0.0006 (18)
C30.041 (3)0.046 (2)0.046 (2)0.006 (2)0.013 (2)0.0019 (19)
C40.054 (3)0.039 (2)0.062 (3)0.005 (2)0.010 (3)0.002 (2)
C50.070 (4)0.053 (3)0.056 (3)0.014 (3)0.001 (3)0.015 (2)
C60.052 (3)0.067 (3)0.041 (2)0.010 (2)0.004 (2)0.001 (2)
C70.047 (3)0.043 (2)0.050 (2)0.006 (2)0.004 (2)0.0046 (19)
C80.045 (3)0.060 (3)0.065 (3)0.002 (3)0.000 (3)0.009 (3)
O10.066 (2)0.049 (2)0.052 (2)0.0007 (19)0.0113 (19)0.0068 (16)
O20.062 (2)0.069 (2)0.0515 (18)0.007 (2)0.004 (2)0.0116 (18)
Geometric parameters (Å, º) top
Br1—C11.902 (5)C5—H50.9300
Br2—C41.894 (5)C6—H60.9300
C1—C21.365 (6)C7—O11.438 (5)
C1—C61.391 (7)C7—H7A0.9700
C2—C31.417 (7)C7—H7B0.9700
C2—C71.504 (6)C8—O21.439 (7)
C3—C41.392 (7)C8—H8A0.9700
C3—C81.502 (7)C8—H8B0.9700
C4—C51.368 (8)O1—H10.81 (6)
C5—C61.359 (9)O2—H20.82 (6)
C2—C1—C6122.0 (5)C5—C6—H6120.2
C2—C1—Br1121.4 (4)C1—C6—H6120.2
C6—C1—Br1116.5 (4)O1—C7—C2110.6 (4)
C1—C2—C3118.7 (4)O1—C7—H7A109.5
C1—C2—C7121.9 (4)C2—C7—H7A109.5
C3—C2—C7119.4 (4)O1—C7—H7B109.5
C4—C3—C2117.8 (4)C2—C7—H7B109.5
C4—C3—C8122.7 (4)H7A—C7—H7B108.1
C2—C3—C8119.4 (4)O2—C8—C3111.7 (4)
C5—C4—C3122.3 (5)O2—C8—H8A109.3
C5—C4—Br2117.0 (4)C3—C8—H8A109.3
C3—C4—Br2120.7 (4)O2—C8—H8B109.3
C6—C5—C4119.7 (5)C3—C8—H8B109.3
C6—C5—H5120.2H8A—C8—H8B107.9
C4—C5—H5120.2C7—O1—H1107 (5)
C5—C6—C1119.5 (5)C8—O2—H298 (5)
C6—C1—C2—C30.1 (7)C8—C3—C4—Br21.0 (6)
Br1—C1—C2—C3178.9 (3)C3—C4—C5—C60.1 (8)
C6—C1—C2—C7178.9 (4)Br2—C4—C5—C6179.8 (4)
Br1—C1—C2—C70.1 (6)C4—C5—C6—C10.6 (8)
C1—C2—C3—C40.6 (6)C2—C1—C6—C50.7 (8)
C7—C2—C3—C4178.2 (4)Br1—C1—C6—C5178.4 (4)
C1—C2—C3—C8178.8 (4)C1—C2—C7—O198.1 (5)
C7—C2—C3—C80.0 (6)C3—C2—C7—O180.7 (5)
C2—C3—C4—C50.7 (7)C4—C3—C8—O2114.8 (5)
C8—C3—C4—C5178.9 (5)C2—C3—C8—O263.3 (6)
C2—C3—C4—Br2179.2 (3)
Hydrogen-bond geometry (Å, º) top
Cg1 is the centroid of the C1–C6 ring.
D—H···AD—HH···AD···AD—H···A
C8—H8A···Br20.972.613.192 (6)119
C7—H7B···Br10.972.663.169 (5)114
O2—H2···O1i0.82 (6)1.92 (3)2.703 (6)160 (7)
O1—H1···O20.81 (6)1.95 (4)2.703 (6)152 (7)
C8—H8B···Cg1ii0.973.013.63 (5)123
Symmetry codes: (i) x+1, y1/2, z+1/2; (ii) x+1, y, z.

Experimental details

Crystal data
Chemical formulaC8H8Br2O2
Mr295.96
Crystal system, space groupOrthorhombic, P212121
Temperature (K)298
a, b, c (Å)4.482 (2), 9.123 (5), 22.819 (11)
V3)933.0 (8)
Z4
Radiation typeMo Kα
µ (mm1)8.64
Crystal size (mm)0.20 × 0.10 × 0.10
Data collection
DiffractometerBruker SMART APEX
diffractometer
Absorption correctionMulti-scan
(SADABS; Sheldrick, 2008)
Tmin, Tmax0.277, 0.479
No. of measured, independent and
observed [I > 2σ(I)] reflections
11471, 2300, 1795
Rint0.040
(sin θ/λ)max1)0.667
Refinement
R[F2 > 2σ(F2)], wR(F2), S 0.043, 0.111, 1.05
No. of reflections2300
No. of parameters115
No. of restraints2
H-atom treatmentH atoms treated by a mixture of independent and constrained refinement
Δρmax, Δρmin (e Å3)1.17, 0.60
Absolute structureFlack (1983), 918 Friedel pairs
Absolute structure parameter0.03 (2)

Computer programs: SMART (Bruker, 1997), SAINT (Bruker, 1999), SHELXS97 (Sheldrick, 2008), SHELXL97 (Sheldrick, 2008), SHELXTL (Sheldrick, 2008).

Hydrogen-bond geometry (Å, º) top
Cg1 is the centroid of the C1–C6 ring.
D—H···AD—HH···AD···AD—H···A
C8—H8A···Br20.972.613.192 (6)119
C7—H7B···Br10.972.663.169 (5)114
O2—H2···O1i0.82 (6)1.92 (3)2.703 (6)160 (7)
O1—H1···O20.81 (6)1.95 (4)2.703 (6)152 (7)
C8—H8B···Cg1ii0.973.013.63 (5)123
Symmetry codes: (i) x+1, y1/2, z+1/2; (ii) x+1, y, z.
 

Acknowledgements

The authors are grateful to Xianggao Meng for the data collection.

References

First citationAbad, A. (2005). Synthesis, 19, 3355–3361.  Web of Science CrossRef Google Scholar
First citationBruker (1997). SMART. Bruker AXS Inc., Madison, Wisconsin, USA.  Google Scholar
First citationBruker (1999). SAINT. Bruker AXS Inc., Madison, Wisconsin, USA.  Google Scholar
First citationFlack, H. D. (1983). Acta Cryst. A39, 876–881.  CrossRef CAS Web of Science IUCr Journals Google Scholar
First citationLai, Y.-H. & Yap, A. H.-T. (1993). J. Chem. Soc. Perkin Trans. 2, pp. 1373–1377.  CrossRef Google Scholar
First citationSheldrick, G. M. (2008). Acta Cryst. A64, 112–122.  Web of Science CrossRef CAS IUCr Journals Google Scholar

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