Literature DB >> 22199867

3-Bromo-5-tert-butyl-2-hy-droxy-benz-alde-hyde.

V Balasubramani, T Vinuchakkaravarthy, Sreeraj Gopi, S Narasimhan, D Velmurugan.   

Abstract

The mol-ecular conformation of the title compound, C(11)H(13)BrO(2), is stabilized by an intra-molecular O-H⋯O hydrogen bond. All non-H atoms except the methyl groups lie approximately in a common plane (r.m.s. deviation = 0.011 Å).

Entities:  

Year:  2011        PMID: 22199867      PMCID: PMC3239019          DOI: 10.1107/S1600536811048847

Source DB:  PubMed          Journal:  Acta Crystallogr Sect E Struct Rep Online        ISSN: 1600-5368


Related literature

For the biological activity of substituted salicyl­aldehyde and its derivatives, see: Mounika et al. (2010 ▶); Dueke-Eze et al. (2010 ▶); Jesmin et al. (2010 ▶). For a related structure, see: Wang et al. (2010 ▶).

Experimental

Crystal data

C11H13BrO2 M = 257.11 Orthorhombic, a = 9.9727 (19) Å b = 12.174 (2) Å c = 18.558 (3) Å V = 2253.0 (7) Å3 Z = 8 Mo Kα radiation μ = 3.62 mm−1 T = 293 K 0.2 × 0.2 × 0.2 mm

Data collection

Bruker SMART APEXII area-detector diffractometer 11555 measured reflections 2808 independent reflections 1442 reflections with I > 2σ(I) R int = 0.079

Refinement

R[F 2 > 2σ(F 2)] = 0.056 wR(F 2) = 0.162 S = 1.02 2808 reflections 131 parameters H-atom parameters constrained Δρmax = 0.59 e Å−3 Δρmin = −0.49 e Å−3 Data collection: APEX2 (Bruker, 2008 ▶); cell refinement: SAINT (Bruker, 2008 ▶); data reduction: SAINT; program(s) used to solve structure: SHELXS97 (Sheldrick, 2008 ▶); program(s) used to refine structure: SHELXL97 (Sheldrick, 2008 ▶); molecular graphics: ORTEP-3 (Farrugia, 1997 ▶); software used to prepare material for publication: SHELXL97 and PLATON (Spek, 2009 ▶). Crystal structure: contains datablock(s) global, I. DOI: 10.1107/S1600536811048847/bt5688sup1.cif Structure factors: contains datablock(s) I. DOI: 10.1107/S1600536811048847/bt5688Isup2.hkl Supplementary material file. DOI: 10.1107/S1600536811048847/bt5688Isup3.cml Additional supplementary materials: crystallographic information; 3D view; checkCIF report
C11H13BrO2F(000) = 1040
Mr = 257.11Dx = 1.516 Mg m3
Orthorhombic, PbcaMo Kα radiation, λ = 0.71073 Å
Hall symbol: -P 2ac 2abCell parameters from 2808 reflections
a = 9.9727 (19) Åθ = 2.2–28.3°
b = 12.174 (2) ŵ = 3.62 mm1
c = 18.558 (3) ÅT = 293 K
V = 2253.0 (7) Å3Block, red
Z = 80.2 × 0.2 × 0.2 mm
Bruker SMART APEXII area-detector diffractometer1442 reflections with I > 2σ(I)
Radiation source: fine-focus sealed tubeRint = 0.079
graphiteθmax = 28.3°, θmin = 2.2°
ω and φ scansh = −13→13
11555 measured reflectionsk = −16→16
2808 independent reflectionsl = −24→24
Refinement on F2Secondary atom site location: difference Fourier map
Least-squares matrix: fullHydrogen site location: inferred from neighbouring sites
R[F2 > 2σ(F2)] = 0.056H-atom parameters constrained
wR(F2) = 0.162w = 1/[σ2(Fo2) + (0.0685P)2 + 1.3566P] where P = (Fo2 + 2Fc2)/3
S = 1.02(Δ/σ)max < 0.001
2808 reflectionsΔρmax = 0.59 e Å3
131 parametersΔρmin = −0.49 e Å3
0 restraintsExtinction correction: SHELXL97 (Sheldrick, 2008), Fc*=kFc[1+0.001xFc2λ3/sin(2θ)]-1/4
Primary atom site location: structure-invariant direct methodsExtinction coefficient: 0.0228 (17)
Geometry. All esds (except the esd in the dihedral angle between two l.s. planes) are estimated using the full covariance matrix. The cell esds are taken into account individually in the estimation of esds in distances, angles and torsion angles; correlations between esds in cell parameters are only used when they are defined by crystal symmetry. An approximate (isotropic) treatment of cell esds is used for estimating esds 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 > 2sigma(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.
xyzUiso*/Ueq
C10.2770 (5)0.1032 (4)0.2246 (2)0.0474 (11)
C20.3680 (5)0.0161 (4)0.2178 (2)0.0507 (12)
C30.4296 (4)−0.0219 (3)0.2794 (2)0.0454 (10)
C40.4025 (4)0.0242 (3)0.3456 (2)0.0462 (10)
H40.4468−0.00270.38600.055*
C50.3112 (4)0.1097 (3)0.3540 (2)0.0422 (10)
C60.2493 (5)0.1482 (3)0.2924 (2)0.0473 (11)
H20.18780.20540.29600.057*
C70.2094 (6)0.1487 (4)0.1612 (3)0.0656 (14)
H70.15090.20730.16800.079*
C80.2802 (5)0.1613 (4)0.4275 (2)0.0526 (12)
C90.1367 (8)0.1334 (7)0.4478 (4)0.136 (3)
H9A0.12720.13580.49920.204*
H9B0.11530.06100.43080.204*
H9C0.07700.18570.42620.204*
C100.3682 (8)0.1149 (6)0.4877 (3)0.104 (2)
H10A0.46040.13190.47800.156*
H10B0.35700.03670.49010.156*
H10C0.34230.14710.53280.156*
C110.3014 (10)0.2826 (5)0.4242 (3)0.131 (4)
H11A0.38990.29770.40630.196*
H11B0.29190.31330.47160.196*
H11C0.23620.31490.39260.196*
O10.2253 (5)0.1147 (3)0.1006 (2)0.0919 (14)
O20.3953 (4)−0.0316 (3)0.15377 (18)0.0749 (10)
H2A0.3523−0.00090.12190.112*
Br10.55350 (5)−0.13980 (4)0.27226 (4)0.0729 (3)
U11U22U33U12U13U23
C10.050 (3)0.052 (2)0.040 (2)−0.012 (2)0.001 (2)−0.0048 (19)
C20.050 (3)0.056 (2)0.047 (3)−0.017 (2)0.013 (2)−0.012 (2)
C30.041 (2)0.0376 (19)0.057 (3)−0.0019 (17)0.005 (2)−0.0125 (18)
C40.046 (2)0.045 (2)0.047 (3)−0.004 (2)−0.005 (2)−0.0026 (19)
C50.047 (3)0.042 (2)0.038 (2)−0.0035 (18)0.001 (2)−0.0045 (16)
C60.052 (3)0.043 (2)0.047 (3)0.001 (2)0.000 (2)−0.0012 (17)
C70.073 (4)0.076 (3)0.048 (3)−0.003 (3)−0.010 (3)0.002 (2)
C80.065 (3)0.057 (3)0.036 (2)0.010 (2)0.007 (3)−0.0029 (19)
C90.095 (5)0.231 (10)0.081 (5)−0.019 (6)0.037 (5)−0.059 (5)
C100.142 (7)0.119 (5)0.052 (3)0.040 (5)−0.007 (4)−0.004 (3)
C110.276 (12)0.059 (3)0.057 (3)0.006 (5)−0.001 (5)−0.017 (3)
O10.111 (4)0.119 (3)0.046 (2)−0.009 (3)−0.015 (2)−0.001 (2)
O20.080 (2)0.092 (2)0.053 (2)−0.007 (2)0.019 (2)−0.0289 (18)
Br10.0566 (4)0.0588 (4)0.1033 (6)0.0078 (2)0.0097 (3)−0.0204 (3)
C1—C61.400 (6)C8—C111.494 (7)
C1—C21.401 (7)C8—C91.518 (9)
C1—C71.465 (7)C8—C101.528 (8)
C2—O21.350 (5)C9—H9A0.9600
C2—C31.377 (6)C9—H9B0.9600
C3—C41.377 (6)C9—H9C0.9600
C3—Br11.899 (4)C10—H10A0.9600
C4—C51.392 (6)C10—H10B0.9600
C4—H40.9300C10—H10C0.9600
C5—C61.381 (6)C11—H11A0.9600
C5—C81.533 (6)C11—H11B0.9600
C6—H20.9300C11—H11C0.9600
C7—O11.209 (6)O2—H2A0.8200
C7—H70.9300
C6—C1—C2120.3 (4)C9—C8—C10106.1 (5)
C6—C1—C7118.9 (4)C11—C8—C5109.8 (4)
C2—C1—C7120.8 (4)C9—C8—C5108.6 (5)
O2—C2—C3119.8 (4)C10—C8—C5112.6 (4)
O2—C2—C1122.3 (4)C8—C9—H9A109.5
C3—C2—C1117.9 (4)C8—C9—H9B109.5
C4—C3—C2121.1 (4)H9A—C9—H9B109.5
C4—C3—Br1119.8 (4)C8—C9—H9C109.5
C2—C3—Br1119.1 (3)H9A—C9—H9C109.5
C3—C4—C5122.2 (4)H9B—C9—H9C109.5
C3—C4—H4118.9C8—C10—H10A109.5
C5—C4—H4118.9C8—C10—H10B109.5
C6—C5—C4116.9 (4)H10A—C10—H10B109.5
C6—C5—C8120.5 (4)C8—C10—H10C109.5
C4—C5—C8122.5 (4)H10A—C10—H10C109.5
C5—C6—C1121.6 (4)H10B—C10—H10C109.5
C5—C6—H2119.2C8—C11—H11A109.5
C1—C6—H2119.2C8—C11—H11B109.5
O1—C7—C1123.9 (5)H11A—C11—H11B109.5
O1—C7—H7118.1C8—C11—H11C109.5
C1—C7—H7118.1H11A—C11—H11C109.5
C11—C8—C9111.4 (6)H11B—C11—H11C109.5
C11—C8—C10108.3 (5)C2—O2—H2A109.5
C6—C1—C2—O2178.4 (4)C4—C5—C6—C10.1 (6)
C7—C1—C2—O2−1.7 (7)C8—C5—C6—C1179.4 (4)
C6—C1—C2—C3−0.8 (6)C2—C1—C6—C50.8 (7)
C7—C1—C2—C3179.0 (4)C7—C1—C6—C5−179.1 (4)
O2—C2—C3—C4−179.2 (4)C6—C1—C7—O1−179.1 (5)
C1—C2—C3—C40.0 (6)C2—C1—C7—O11.0 (8)
O2—C2—C3—Br10.7 (6)C6—C5—C8—C11−53.8 (7)
C1—C2—C3—Br1180.0 (3)C4—C5—C8—C11125.4 (6)
C2—C3—C4—C50.9 (7)C6—C5—C8—C968.3 (6)
Br1—C3—C4—C5−179.1 (3)C4—C5—C8—C9−112.5 (6)
C3—C4—C5—C6−0.9 (6)C6—C5—C8—C10−174.5 (5)
C3—C4—C5—C8179.8 (4)C4—C5—C8—C104.7 (7)
D—H···AD—HH···AD···AD—H···A
O2—H2A···O10.821.932.650 (6)145
Table 1

Hydrogen-bond geometry (Å, °)

D—H⋯AD—HH⋯ADAD—H⋯A
O2—H2A⋯O10.821.932.650 (6)145
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