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ISSN: 2414-3146

Cetylpyridinium bromide monohydrate: localization of H atoms

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aNelson Mandela University, Summerstrand Campus, Department of Chemistry, University Way, Summerstrand, PO Box 77000, Port Elizabeth, 6031, South Africa
*Correspondence e-mail: [email protected]

Edited by M. Bolte, Goethe-Universität Frankfurt, Germany (Received 6 November 2025; accepted 7 November 2025; online 14 November 2025)

The title compound, C21H38N+·Br·H2O, is the bromide salt of a quarternary pyridinium cation bearing a hexa­decyl chain on the nitro­gen atom. One mol­ecule of solvent water is present in the asymmetric unit. Classical hydrogen bonds of the O—H⋯Br type are observed next to C—H⋯Br and C—H⋯O contacts that connect the entities of the title compound to sheets parallel to the ab plane.

3D view (loading...)
[Scheme 3D1]
Chemical scheme
[Scheme 1]

Structure description

The effect of size and steric pretence of large ions on the chemical and spectroscopic properties of compounds have been a focus of research for many decades. Many effects can be attributed to the spatial requirements of counter-ions such as the glass-transition temperature in ionomers (Enokida et al., 2020View full citation) or surfactant-modifying properties (Oh & Shah, 1993View full citation), the charge transfer in radical ions (Piotrowiak & Miller, 1993View full citation) and polymer-modified electrodes (Ma­thias & Haas, 1993View full citation) as well as the structural and vibrational spectroscopic behaviour of DNA building blocks (Minguirbara et al., 2020View full citation). In addition, it has been found that selecting an adequate size of counter-ions to crystallize ionic compounds can be crucial for the isolation of crystalline reaction products of high quality, the latter having been confirmed and reviewed on many occasions (Roof & Kolis, 1993View full citation), with bis­(tri­phenyl­phosphine)iminium being a good example for the successful crystallization of bulky transition-metal coordination compounds (McNicholas et al., 2023View full citation). In a continuation of our inter­est in metrical features of large cations (Muller et al., 2021aView full citation,bView full citation,cView full citation,dView full citation,eView full citation,fView full citation,gView full citation; Hosten et al., 2012View full citation; Hosten et al., 2015aView full citation,bView full citation; Hosten & Betz, 2024View full citation; Schoultz et al., 2015View full citation), the structure of the title compound has been determined. While the latter has been reported previously (Ballirano et al., 1998View full citation), no hydrogen-atom positions were determined, which precludes discussions of inter- and intra­molecular inter­actions on a comparative basis in the envisioned ionic target compounds. The mol­ecular and crystal structures of co-crystallizates of the title compound have been reported earlier (Iimura et al., 2002View full citation), as were the structures of the hydrated and anhydrous quinolinium equivalents (Wieckowski et al., 2024View full citation). Furthermore, the mol­ecular and crystal structures of two compounds featuring the title compound's cationic residue as leitmotif are apparent in the literature (Dalcanale et al., 2021View full citation; Lu et al., 2011View full citation). Cetylpyridinium bromide (CPB) as such has been employed extensively in germicidal applications, as well as in enzyme studies where CPB was used for polymerization, protein folding, gene delivery and, eventually, as a drug delivery agent in pharmaceuticals (Verma et al., 2015View full citation; Ali et al., 2023View full citation).

The structure solution shows the presence of an alkyl­ated derivative of pyridine with the nitro­gen atom bearing a hexa­decyl chain. The positive charge of this pyridinium cation is counterbalanced by a bromide anion. Furthermore, a mol­ecule of water is present in the asymmetric unit. The alkyl chain adopts an ideal zigzag conformation with all its carbon atoms being co-planar, and the largest deviation from the least-squares plane as defined by these carbon atoms measured at 0.026 (2) Å. The latter plane inter­sects with the least-squares plane as defined by the non-hydrogen atoms of the aromatic system at an angle of 60.30 (9)°. Intra­cyclic angles cover a range from 118.72 (17)–120.62 (17)° with the smallest angle on the carbon atom opposite from the pnicogen atom and the largest angle on one of the intra­cyclic carbon atoms directly bonded to the nitro­gen atom (Fig. 1[link]). Bond lengths are in good agreement with other alkyl­ated pyridinium derivatives whose metrical parameters have been deposited with the Cambridge Structural Database (Groom et al., 2016View full citation).

[Figure 1]
Figure 1
The mol­ecular structure of the title compound, with atom labels and anisotropic displacement ellipsoids (drawn at the 50% probability level).

In the crystal structure, classical hydrogen bonds of the O—H⋯Br type (Table 1[link]) are observed next to C—H⋯O as well as C—H⋯Br contacts whose range falls by more than 0.1 Å below the sum of van der Waals radii of the atoms participating in them. The C—H⋯O contacts are established by one of the aromatic CH groups in ortho position to the nitro­gen atom as well as the adjacent aromatic CH group in the meta position to the pnicogen atom while the C—H⋯Br contacts are observed between the second aromatic CH group in an ortho position to the nitro­gen atom and the aromatic CH group in a para position as well as one of the hydrogen atoms of the methyl­ene group directly bonded to the intra­cyclic heteroatom (Fig. 2[link]). In total, the entities of the asymmetric unit are connected into a three-dimensional network. In terms of graph-set analysis (Etter et al., 1990View full citation; Bernstein et al., 1995View full citation), the classical hydrogen bonds require a DD descriptor on the unary level while the C—H⋯O and C—H⋯Br contacts necessitate a DDD descriptor on the same level. π-Stacking is not a prominent feature in the crystal structure of the title compound with the shortest inter­centroid distance measured at 4.6493 (11) Å.

Table 1
Hydrogen-bond geometry (Å, °)

D—H⋯A D—H H⋯A DA D—H⋯A
O1—H1A⋯Br1i 0.84 (1) 2.49 (1) 3.3254 (14) 177 (2)
O1—H1B⋯Br1 0.84 (1) 2.49 (1) 3.3227 (16) 171 (2)
C1—H1⋯Br1ii 0.95 2.87 3.5890 (17) 133
C3—H3⋯Br1iii 0.95 2.85 3.7797 (18) 168
C4—H4⋯O1iv 0.95 2.59 3.362 (3) 138
C5—H5⋯O1 0.95 2.28 3.218 (2) 171
C6—H6B⋯Br1 0.99 2.84 3.7702 (18) 156
Symmetry codes: (i) Mathematical equation; (ii) Mathematical equation; (iii) Mathematical equation; (iv) Mathematical equation.
[Figure 2]
Figure 2
Selected inter­molecular contacts, viewed along [010].

Synthesis and crystallization

The compound was obtained commercially (Fluka). Crystals suitable for the diffraction study were obtained upon recrystallization from boiling water.

Refinement

Crystal data, data collection and structure refinement details are summarized in Table 2[link]. The carbon-bound H atoms were placed in calculated positions (C—H = 0.95 Å for the aromatic carbon atoms and C—H = 0.99 Å for the methyl­ene groups) and were included in the refinement in the riding model approximation, with Uiso(H) set to 1.2Ueq(C). The H atoms of the methyl group were allowed to rotate with a fixed angle around the C—C bond to best fit the experimental electron density [HFIX 137 in the SHELX program suite (Sheldrick, 2015)], with Uiso(H) set to 1.5Ueq(C) and with C—H 0.98 Å. The hydrogen atoms of the water mol­ecule were located on a difference-Fourier map and refined freely with the O—H distances restrained to 0.84 (1) Å and the H⋯H distance restrained to 1.34 (2) Å.

Table 2
Experimental details

Crystal data
Chemical formula C21H38N+·Br·H2O
Mr 402.45
Crystal system, space group Triclinic, PMathematical equation
Temperature (K) 200
a, b, c (Å) 5.5164 (2), 7.5140 (2), 27.3705 (9)
α, β, γ (°) 94.420 (1), 95.059 (1), 100.723 (1)
V3) 1105.28 (6)
Z 2
Radiation type Mo Kα
μ (mm−1) 1.87
Crystal size (mm) 0.44 × 0.29 × 0.03
 
Data collection
Diffractometer Bruker APEXII CCD
Absorption correction Multi-scan (SADABS; Krause et al., 2015View full citation)
Tmin, Tmax 0.466, 0.511
No. of measured, independent and observed [I > 2σ(I)] reflections 49450, 4490, 4131
Rint 0.040
(sin θ/λ)max−1) 0.625
 
Refinement
R[F2 > 2σ(F2)], wR(F2), S 0.027, 0.062, 1.13
No. of reflections 4490
No. of parameters 226
No. of restraints 3
H-atom treatment H atoms treated by a mixture of independent and constrained refinement
Δρmax, Δρmin (e Å−3) 0.33, −0.35
Computer programs: APEX2 and SAINT (Bruker, 2014View full citation), SHELXS97 (Sheldrick 2008View full citation), ORTEP-3 for Windows (Farrugia, 2012View full citation), Mercury (Macrae et al., 2020View full citation), SHELXL2019/3 (Sheldrick, 2015View full citation) and PLATON (Spek, 2020View full citation).

Structural data


Computing details top

1-Hexadecylpyridin-1-ium bromide monohydrate top
Crystal data top
C21H38N+·Br·H2OZ = 2
Mr = 402.45F(000) = 432
Triclinic, P1Dx = 1.209 Mg m3
a = 5.5164 (2) ÅMo Kα radiation, λ = 0.71073 Å
b = 7.5140 (2) ÅCell parameters from 9771 reflections
c = 27.3705 (9) Åθ = 2.3–26.3°
α = 94.420 (1)°µ = 1.87 mm1
β = 95.059 (1)°T = 200 K
γ = 100.723 (1)°Platelet, colourless
V = 1105.28 (6) Å30.44 × 0.29 × 0.03 mm
Data collection top
Bruker APEXII CCD
diffractometer
4490 independent reflections
Radiation source: sealed tube4131 reflections with I > 2σ(I)
Graphite monochromatorRint = 0.040
φ and ω scansθmax = 26.4°, θmin = 2.3°
Absorption correction: multi-scan
(SADABS; Krause et al., 2015)
h = 66
Tmin = 0.466, Tmax = 0.511k = 99
49450 measured reflectionsl = 3434
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)] = 0.027Hydrogen site location: mixed
wR(F2) = 0.062H atoms treated by a mixture of independent and constrained refinement
S = 1.13 w = 1/[σ2(Fo2) + (0.0194P)2 + 0.5567P]
where P = (Fo2 + 2Fc2)/3
4490 reflections(Δ/σ)max = 0.001
226 parametersΔρmax = 0.33 e Å3
3 restraintsΔρmin = 0.35 e Å3
Special details top

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.

Fractional atomic coordinates and isotropic or equivalent isotropic displacement parameters (Å2) top
xyzUiso*/Ueq
Br10.28243 (3)0.95301 (3)0.12071 (2)0.03558 (7)
O10.7091 (3)0.7168 (2)0.09060 (6)0.0504 (4)
N10.0383 (2)0.38072 (18)0.10659 (5)0.0266 (3)
C10.1706 (3)0.2569 (2)0.09486 (7)0.0339 (4)
H10.2798830.2272040.1192390.041*
C20.2285 (4)0.1725 (3)0.04807 (7)0.0409 (5)
H20.3783440.0857710.0399520.049*
C30.0693 (4)0.2135 (3)0.01278 (7)0.0401 (4)
H30.1084250.1566700.0199220.048*
C40.1481 (4)0.3385 (3)0.02579 (7)0.0390 (4)
H40.2621450.3671540.0021800.047*
C50.1988 (3)0.4213 (2)0.07289 (7)0.0339 (4)
H50.3482000.5078360.0818570.041*
C60.0934 (3)0.4768 (2)0.15689 (6)0.0311 (4)
H6A0.0463250.4350830.1762440.037*
H6B0.1049120.6088200.1545180.037*
C70.3304 (3)0.4468 (2)0.18408 (6)0.0314 (4)
H7A0.4731010.4957220.1662820.038*
H7B0.3241440.3147360.1854760.038*
C80.3644 (3)0.5410 (2)0.23604 (6)0.0320 (4)
H8A0.3670900.6724020.2340640.038*
H8B0.2194920.4917830.2532300.038*
C90.5985 (3)0.5194 (3)0.26641 (6)0.0337 (4)
H9A0.7438760.5701060.2495460.040*
H9B0.5969030.3881580.2682630.040*
C100.6273 (3)0.6130 (3)0.31830 (6)0.0331 (4)
H10A0.4793460.5644810.3347070.040*
H10B0.6322610.7446010.3162850.040*
C110.8573 (3)0.5898 (3)0.34997 (6)0.0336 (4)
H11A1.0055060.6365510.3334000.040*
H11B0.8511930.4584220.3526110.040*
C120.8855 (3)0.6873 (3)0.40158 (6)0.0328 (4)
H12A0.8925940.8187470.3988710.039*
H12B0.7364220.6412390.4179770.039*
C131.1140 (3)0.6639 (3)0.43375 (6)0.0336 (4)
H13A1.1064170.5324840.4366620.040*
H13B1.2630540.7092920.4172930.040*
C141.1420 (3)0.7623 (3)0.48512 (6)0.0334 (4)
H14A1.1495480.8936550.4821820.040*
H14B0.9928500.7168920.5015440.040*
C151.3701 (3)0.7392 (3)0.51738 (6)0.0337 (4)
H15A1.5193400.7845770.5009630.040*
H15B1.3626410.6078040.5203230.040*
C161.3980 (3)0.8377 (3)0.56876 (6)0.0338 (4)
H16A1.2488280.7922930.5851830.041*
H16B1.4056440.9690370.5658280.041*
C171.6265 (3)0.8144 (3)0.60107 (6)0.0337 (4)
H17A1.6191890.6829630.6039110.040*
H17B1.7757610.8600930.5846960.040*
C181.6542 (3)0.9124 (3)0.65253 (6)0.0338 (4)
H18A1.6600061.0435770.6496650.041*
H18B1.5055360.8658750.6689840.041*
C191.8831 (3)0.8908 (3)0.68477 (6)0.0328 (4)
H19A1.8768760.7595610.6877800.039*
H19B2.0317420.9366160.6682310.039*
C201.9115 (4)0.9893 (3)0.73601 (7)0.0382 (4)
H20A1.7637000.9426150.7527050.046*
H20B1.9163721.1203400.7330380.046*
C212.1420 (4)0.9684 (3)0.76790 (7)0.0460 (5)
H21A2.1374270.8392420.7716620.069*
H21B2.1476221.0346760.8003810.069*
H21C2.2898331.0179330.7522380.069*
H1A0.852 (2)0.778 (3)0.0994 (9)0.069 (8)*
H1B0.614 (4)0.784 (3)0.1003 (10)0.081 (10)*
Atomic displacement parameters (Å2) top
U11U22U33U12U13U23
Br10.02816 (10)0.03556 (11)0.03999 (11)0.00062 (7)0.00212 (7)0.00012 (7)
O10.0321 (8)0.0411 (8)0.0731 (11)0.0018 (7)0.0078 (7)0.0051 (7)
N10.0263 (7)0.0260 (7)0.0262 (7)0.0042 (6)0.0031 (5)0.0027 (6)
C10.0274 (9)0.0337 (10)0.0376 (10)0.0011 (7)0.0003 (7)0.0061 (8)
C20.0374 (10)0.0383 (10)0.0388 (10)0.0061 (8)0.0086 (8)0.0011 (8)
C30.0520 (12)0.0367 (10)0.0293 (9)0.0095 (9)0.0061 (8)0.0021 (8)
C40.0429 (11)0.0436 (11)0.0303 (9)0.0057 (9)0.0049 (8)0.0080 (8)
C50.0310 (9)0.0341 (10)0.0337 (9)0.0019 (7)0.0016 (7)0.0074 (7)
C60.0327 (9)0.0313 (9)0.0278 (9)0.0067 (7)0.0015 (7)0.0016 (7)
C70.0321 (9)0.0336 (9)0.0276 (9)0.0082 (7)0.0020 (7)0.0012 (7)
C80.0322 (9)0.0347 (10)0.0282 (9)0.0089 (8)0.0018 (7)0.0035 (7)
C90.0325 (9)0.0383 (10)0.0294 (9)0.0109 (8)0.0027 (7)0.0054 (7)
C100.0310 (9)0.0394 (10)0.0283 (9)0.0103 (8)0.0011 (7)0.0042 (7)
C110.0325 (9)0.0395 (10)0.0282 (9)0.0110 (8)0.0015 (7)0.0046 (7)
C120.0318 (9)0.0388 (10)0.0277 (9)0.0107 (8)0.0008 (7)0.0032 (7)
C130.0317 (9)0.0396 (10)0.0290 (9)0.0106 (8)0.0011 (7)0.0032 (7)
C140.0311 (9)0.0400 (10)0.0287 (9)0.0103 (8)0.0007 (7)0.0037 (7)
C150.0319 (9)0.0404 (10)0.0285 (9)0.0111 (8)0.0016 (7)0.0032 (7)
C160.0315 (9)0.0407 (10)0.0292 (9)0.0115 (8)0.0008 (7)0.0035 (8)
C170.0323 (9)0.0393 (10)0.0292 (9)0.0109 (8)0.0011 (7)0.0032 (7)
C180.0320 (9)0.0402 (10)0.0292 (9)0.0108 (8)0.0004 (7)0.0022 (8)
C190.0326 (9)0.0370 (10)0.0293 (9)0.0108 (8)0.0003 (7)0.0014 (7)
C200.0370 (10)0.0482 (11)0.0294 (9)0.0123 (9)0.0001 (8)0.0028 (8)
C210.0429 (11)0.0602 (13)0.0324 (10)0.0108 (10)0.0059 (8)0.0013 (9)
Geometric parameters (Å, º) top
O1—H1A0.837 (10)C11—H11B0.9900
O1—H1B0.838 (10)C12—C131.519 (2)
N1—C11.337 (2)C12—H12A0.9900
N1—C51.347 (2)C12—H12B0.9900
N1—C61.483 (2)C13—C141.519 (2)
C1—C21.368 (3)C13—H13A0.9900
C1—H10.9500C13—H13B0.9900
C2—C31.376 (3)C14—C151.517 (2)
C2—H20.9500C14—H14A0.9900
C3—C41.379 (3)C14—H14B0.9900
C3—H30.9500C15—C161.519 (2)
C4—C51.369 (3)C15—H15A0.9900
C4—H40.9500C15—H15B0.9900
C5—H50.9500C16—C171.520 (2)
C6—C71.509 (2)C16—H16A0.9900
C6—H6A0.9900C16—H16B0.9900
C6—H6B0.9900C17—C181.520 (2)
C7—C81.519 (2)C17—H17A0.9900
C7—H7A0.9900C17—H17B0.9900
C7—H7B0.9900C18—C191.517 (2)
C8—C91.515 (2)C18—H18A0.9900
C8—H8A0.9900C18—H18B0.9900
C8—H8B0.9900C19—C201.516 (2)
C9—C101.517 (2)C19—H19A0.9900
C9—H9A0.9900C19—H19B0.9900
C9—H9B0.9900C20—C211.518 (3)
C10—C111.518 (2)C20—H20A0.9900
C10—H10A0.9900C20—H20B0.9900
C10—H10B0.9900C21—H21A0.9800
C11—C121.522 (2)C21—H21B0.9800
C11—H11A0.9900C21—H21C0.9800
H1A—O1—H1B104.1 (18)C13—C12—H12B108.7
C1—N1—C5120.59 (15)C11—C12—H12B108.7
C1—N1—C6119.99 (15)H12A—C12—H12B107.6
C5—N1—C6119.42 (14)C14—C13—C12113.91 (14)
N1—C1—C2120.62 (17)C14—C13—H13A108.8
N1—C1—H1119.7C12—C13—H13A108.8
C2—C1—H1119.7C14—C13—H13B108.8
C1—C2—C3119.91 (17)C12—C13—H13B108.8
C1—C2—H2120.0H13A—C13—H13B107.7
C3—C2—H2120.0C15—C14—C13114.07 (15)
C2—C3—C4118.72 (17)C15—C14—H14A108.7
C2—C3—H3120.6C13—C14—H14A108.7
C4—C3—H3120.6C15—C14—H14B108.7
C5—C4—C3119.71 (18)C13—C14—H14B108.7
C5—C4—H4120.1H14A—C14—H14B107.6
C3—C4—H4120.1C14—C15—C16114.04 (15)
N1—C5—C4120.43 (16)C14—C15—H15A108.7
N1—C5—H5119.8C16—C15—H15A108.7
C4—C5—H5119.8C14—C15—H15B108.7
N1—C6—C7113.70 (14)C16—C15—H15B108.7
N1—C6—H6A108.8H15A—C15—H15B107.6
C7—C6—H6A108.8C15—C16—C17114.01 (15)
N1—C6—H6B108.8C15—C16—H16A108.8
C7—C6—H6B108.8C17—C16—H16A108.8
H6A—C6—H6B107.7C15—C16—H16B108.8
C6—C7—C8110.07 (14)C17—C16—H16B108.8
C6—C7—H7A109.6H16A—C16—H16B107.6
C8—C7—H7A109.6C18—C17—C16114.06 (15)
C6—C7—H7B109.6C18—C17—H17A108.7
C8—C7—H7B109.6C16—C17—H17A108.7
H7A—C7—H7B108.2C18—C17—H17B108.7
C9—C8—C7114.14 (14)C16—C17—H17B108.7
C9—C8—H8A108.7H17A—C17—H17B107.6
C7—C8—H8A108.7C19—C18—C17114.24 (15)
C9—C8—H8B108.7C19—C18—H18A108.7
C7—C8—H8B108.7C17—C18—H18A108.7
H8A—C8—H8B107.6C19—C18—H18B108.7
C8—C9—C10113.24 (14)C17—C18—H18B108.7
C8—C9—H9A108.9H18A—C18—H18B107.6
C10—C9—H9A108.9C20—C19—C18114.25 (15)
C8—C9—H9B108.9C20—C19—H19A108.7
C10—C9—H9B108.9C18—C19—H19A108.7
H9A—C9—H9B107.7C20—C19—H19B108.7
C9—C10—C11114.38 (14)C18—C19—H19B108.7
C9—C10—H10A108.7H19A—C19—H19B107.6
C11—C10—H10A108.7C19—C20—C21113.96 (16)
C9—C10—H10B108.7C19—C20—H20A108.8
C11—C10—H10B108.7C21—C20—H20A108.8
H10A—C10—H10B107.6C19—C20—H20B108.8
C10—C11—C12113.63 (14)C21—C20—H20B108.8
C10—C11—H11A108.8H20A—C20—H20B107.7
C12—C11—H11A108.8C20—C21—H21A109.5
C10—C11—H11B108.8C20—C21—H21B109.5
C12—C11—H11B108.8H21A—C21—H21B109.5
H11A—C11—H11B107.7C20—C21—H21C109.5
C13—C12—C11114.11 (14)H21A—C21—H21C109.5
C13—C12—H12A108.7H21B—C21—H21C109.5
C11—C12—H12A108.7
C5—N1—C1—C21.7 (3)C7—C8—C9—C10179.42 (16)
C6—N1—C1—C2177.39 (16)C8—C9—C10—C11178.63 (16)
N1—C1—C2—C30.8 (3)C9—C10—C11—C12179.00 (16)
C1—C2—C3—C40.7 (3)C10—C11—C12—C13179.56 (16)
C2—C3—C4—C51.2 (3)C11—C12—C13—C14179.66 (16)
C1—N1—C5—C41.2 (3)C12—C13—C14—C15179.98 (16)
C6—N1—C5—C4177.93 (16)C13—C14—C15—C16180.00 (16)
C3—C4—C5—N10.3 (3)C14—C15—C16—C17179.97 (16)
C1—N1—C6—C7119.68 (18)C15—C16—C17—C18179.82 (16)
C5—N1—C6—C761.2 (2)C16—C17—C18—C19179.52 (16)
N1—C6—C7—C8176.85 (14)C17—C18—C19—C20179.70 (16)
C6—C7—C8—C9179.81 (16)C18—C19—C20—C21179.49 (17)
Hydrogen-bond geometry (Å, º) top
D—H···AD—HH···AD···AD—H···A
O1—H1A···Br1i0.84 (1)2.49 (1)3.3254 (14)177 (2)
O1—H1B···Br10.84 (1)2.49 (1)3.3227 (16)171 (2)
C1—H1···Br1ii0.952.873.5890 (17)133
C3—H3···Br1iii0.952.853.7797 (18)168
C4—H4···O1iv0.952.593.362 (3)138
C5—H5···O10.952.283.218 (2)171
C6—H6B···Br10.992.843.7702 (18)156
Symmetry codes: (i) x+1, y, z; (ii) x1, y1, z; (iii) x, y+1, z; (iv) x+1, y+1, z.
 

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