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

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ISSN: 2414-3146

1,3-Bis(4-bromo­phen­yl)-1H-imidazol-3-ium tetra­fluoro­borate

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aDepartment of Chemistry, Durban University of Technology, PO Box 1334, Durban, 4000, South Africa, and bSchool of Agriculture and Science, Discipline of Chemistry, University of KwaZulu-Natal, Private Bag X54001, Westville, Durban, 4000, South Africa
*Correspondence e-mail: [email protected]

(Received 5 March 2026; accepted 10 March 2026; online 17 March 2026)

The crystal of the title salt, C15H11Br2N2+·BF4, contains one half of a 1,3-bis­(4-bromo­phen­yl)imidazolium cation and one half of a tetra­fluoro­borate anion in the asymmetric unit; the complete ions are generated by crystallographic twofold symmetry. The imidazolium cation adopts a syn-periplanar conformation, with the 4-bromo­phenyl rings inclined to the central imidazolium ring by 36.04 (4)°. In the crystal, the tetra­fluoro­borate anion participates in structure-directing halogen-bonding contacts through F⋯Br and F⋯π(phen­yl) inter­actions. These are complemented by inter­molecular ππ and Br⋯π inter­actions, which assemble the ions into two-dimensional supra­molecular sheets lying parallel to the ac plane. The sheets are further linked by C—H⋯F hydrogen bonds, forming ring motifs of graph sets R22(7) and R21(4) within a three-dimensional supra­molecular network.

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

Structure description

The title compound is a 1,3-di­aryl­substituted imidazolium salt, which was originally synthesized via a method involving mechano-grinding and acidification (Ikhile et al., 2011View full citation). The synthetic method employed herein is a `green' modification of the initial method (Arduengo et al., 1992View full citation). While the synthesis of the title compound has been reported (Ikhile et al., 2011View full citation), crystallographic details and those of analogous 1,3-bis­(4-halophen­yl)imidazolium tetra­fluoro­borates are not available. The title compound and its related analogues bearing ferrocenyl moieties have found application as green catalysts for the transfer hydrogenation of ketones (Ikhile et al., 2012View full citation, 2013View full citation). Recent work on similar 1,3-di­aryl­imidazoliumm salts (Ndlovu et al., 2017View full citation) and reviews on the biological activity of non-heteroatom functionalized azolium salts (Patil et al., 2020View full citation; Fletcher et al., 2018View full citation; Mercs & Albrecht, 2010View full citation) have also provided evidence on the structure/activity trends in their well established potential as anti-fungal, anti-bacterial and anti-proliferative agents. As part of our work in developing new imidazolium derivatives with impressive anti-microbial activities (Kadafour et al., 2022View full citation; Ndlovu et al., 2017View full citation), we synthesized the title compound and determined its crystal structure.

The asymmetric unit of the title compound comprises half a cationic 1,3-bis­(4-bromo­phen­yl)imidazolium species and half a tetra­fluoro­borate counter-ion, with the complete ions being generated by a C2 rotation axis that runs parallel to the C5—H5 bond (Fig. 1[link]). The cationic species adopts a syn-periplanar conformation with the dihedral angle between the mean planes of the central imidazolium ring and the 4-bromo­phenyl wingtip being 36.04 (4)°, which is wider than that observed in the hydrated chloride analogue of the title compound, i.e. 2.9 (1)° (Garden et al., 2010View full citation).

[Figure 1]
Figure 1
Mol­ecular structure of the title compound showing the atom-numbering scheme and displacement ellipsoids drawn at the 50% probability level. Symmetry code: (i) −x + 1, y, −z + Mathematical equation.

The extended structure features halogen bonding that is driven by the tetra­fluoro­borate moiety via F1⋯π(phen­yl) [F1⋯Cg(phen­yl) = 3.5669 (12) Å, symmetry operation: Mathematical equation − x, Mathematical equation + y, Mathematical equation − z and F2⋯Br1 (F2⋯Br1 = 2.8890 (12) Å, symmetry code: Mathematical equation + x, Mathematical equation − y, −Mathematical equation + z] inter­actions. In conjunction with the halogen-bonding patterns involving F atoms, inter­molecular π(phen­yl)–π(phen­yl) [CgCg = 3.6720 (9) Å, symmetry operation: 1 − x, 1 − y, 1 − z] and π(phen­yl)⋯Br1 [Br⋯π = 3.9061 (6) Å, symmetry operation: 1 − x, 1 − y, 1-z; x, 1 − y, −Mathematical equation − z) inter­actions occur within two-dimensional supra­molecular networks parallel to the ac plane (Fig. 2[link]). Finally, inter­molecular C—H⋯F hydrogen bonds with graph-set descriptors R22(7) and R12(4), link the two-dimensional supra­molecular networks along the b axis within a three-dimensional framework (Table 1[link], Fig. 3[link]).

Table 1
Hydrogen-bond geometry (Å, °)

D—H⋯A D—H H⋯A DA D—H⋯A
C5—H5⋯F1i 0.95 2.29 3.156 (2) 151
C6—H6⋯F2ii 0.95 2.39 3.1854 (19) 140
Symmetry codes: (i) Mathematical equation; (ii) Mathematical equation.
[Figure 2]
Figure 2
Representation of π(phen­yl)–π(phen­yl), π(phen­yl)⋯Br and F⋯Br inter­actions in the crystal of the title compound.
[Figure 3]
Figure 3
Representation of C—H⋯F hydrogen bonds in the crystal of the title compound.

Synthesis and crystallization

The details on the synthesis of the title compound have been reported (Ikhile et al., 2011View full citation). The starting materials were 1,3-bis­(4-bromo­phen­yl)ethyl­enedi­imine (1.5 g; 4.10 mmol), paraformaldehyde (0.123 g: 4.10 mmol) and HBF4 (0.54 ml; 0.36 g; 4.10 mmol). Brown precipitate: 0.9603 g (yield: 62%); m.p. 181 °C; IR (ATR cm−1): 3126, 1590, 1491, 1401, 1295, 1122, 1059, 1015, 988, 960, 827, 617, 592, 523. 1H NMR (400 MHz, DMSO-d6): δ 7.88 (4H, d, J = 8.9, Ar—H), 7.97 (4H, d, J = 8.9, Ar—H), 8.57 (2H, s, Imid-CH=CH) and 10.37 p.p.m. (1H, s, NCHN). All other spectroscopic data matched those previously reported. Suitable crystals for X-ray diffraction analysis were grown by layering the DMSO solution with diethyl ether.

Refinement

Crystal data, data collection and structure refinement details are summarized in Table 2[link].

Table 2
Experimental details

Crystal data
Chemical formula C15H11Br2N2+·BF4
Mr 465.89
Crystal system, space group Monoclinic, C2/c
Temperature (K) 100
a, b, c (Å) 9.5407 (2), 9.8272 (2), 17.0451 (3)
β (°) 102.878 (1)
V3) 1557.92 (5)
Z 4
Radiation type Mo Kα
μ (mm−1) 5.25
Crystal size (mm) 0.37 × 0.28 × 0.21
 
Data collection
Diffractometer Bruker SMART APEXII area detector
Absorption correction Multi-scan (SADABS; Krause et al., 2015View full citation)
Tmin, Tmax 0.618, 0.746
No. of measured, independent and observed [I > 2σ(I)] reflections 9293, 1922, 1748
Rint 0.023
(sin θ/λ)max−1) 0.667
 
Refinement
R[F2 > 2σ(F2)], wR(F2), S 0.017, 0.038, 1.06
No. of reflections 1922
No. of parameters 110
H-atom treatment H-atom parameters constrained
Δρmax, Δρmin (e Å−3) 0.37, −0.29
Computer programs: APEX2, COSMO and SAINT (Bruker, 2009View full citation), SHELXS2013 (Sheldrick, 2008View full citation), SHELXL2018/3 (Sheldrick, 2015View full citation) and OLEX2 (Dolomanov et al., 2009View full citation).

Structural data


Computing details top

1,3-Bis(4-bromophenyl)-1H-imidazol-3-ium tetrafluoroborate top
Crystal data top
C15H11Br2N2+·BF4F(000) = 904
Mr = 465.89Dx = 1.986 Mg m3
Monoclinic, C2/cMo Kα radiation, λ = 0.71073 Å
a = 9.5407 (2) ÅCell parameters from 5032 reflections
b = 9.8272 (2) Åθ = 2.5–28.2°
c = 17.0451 (3) ŵ = 5.25 mm1
β = 102.878 (1)°T = 100 K
V = 1557.92 (5) Å3Block, colourless
Z = 40.37 × 0.28 × 0.21 mm
Data collection top
Bruker SMART APEXII area detector
diffractometer
1922 independent reflections
Radiation source: microfocus sealed X-ray tube, Incoatec Iµs1748 reflections with I > 2σ(I)
Mirror optics monochromatorRint = 0.023
Detector resolution: 7.9 pixels mm-1θmax = 28.3°, θmin = 2.5°
ω and φ scansh = 1212
Absorption correction: multi-scan
(SADABS; Krause et al., 2015)
k = 1213
Tmin = 0.618, Tmax = 0.746l = 2222
9293 measured reflections
Refinement top
Refinement on F20 restraints
Least-squares matrix: fullHydrogen site location: inferred from neighbouring sites
R[F2 > 2σ(F2)] = 0.017H-atom parameters constrained
wR(F2) = 0.038 w = 1/[σ2(Fo2) + (0.0133P)2 + 2.086P]
where P = (Fo2 + 2Fc2)/3
S = 1.06(Δ/σ)max = 0.002
1922 reflectionsΔρmax = 0.37 e Å3
110 parametersΔρmin = 0.29 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
Br10.79285 (2)0.44748 (2)0.42461 (2)0.01694 (5)
F10.60495 (11)1.28959 (10)0.79615 (6)0.0298 (2)
F20.43907 (13)1.12447 (11)0.79918 (7)0.0379 (3)
N10.54845 (13)0.66867 (12)0.69843 (7)0.0130 (2)
C10.71272 (15)0.51725 (16)0.50861 (9)0.0153 (3)
C20.63143 (15)0.63529 (15)0.49678 (9)0.0150 (3)
H20.6132290.6807670.4463390.018*
C30.57701 (15)0.68594 (15)0.56002 (9)0.0145 (3)
H30.5205370.7664830.5532920.017*
C40.60593 (15)0.61777 (15)0.63310 (9)0.0139 (3)
C50.5000000.5896 (2)0.7500000.0140 (4)
H50.5000020.4928960.7500010.017*
C60.53051 (16)0.80363 (15)0.71783 (9)0.0161 (3)
H60.5562280.8813310.6909950.019*
C70.73926 (16)0.44820 (16)0.58138 (9)0.0175 (3)
H70.7936080.3663550.5878080.021*
C80.68604 (16)0.49934 (16)0.64455 (9)0.0165 (3)
H80.7042520.4538120.6949750.020*
B10.5000001.2063 (3)0.7500000.0185 (5)
Atomic displacement parameters (Å2) top
U11U22U33U12U13U23
Br10.01930 (8)0.01754 (8)0.01556 (8)0.00009 (6)0.00730 (5)0.00169 (6)
F10.0342 (6)0.0190 (5)0.0305 (5)0.0001 (4)0.0052 (5)0.0008 (4)
F20.0569 (7)0.0275 (6)0.0381 (6)0.0040 (5)0.0292 (6)0.0094 (5)
N10.0148 (6)0.0119 (6)0.0123 (6)0.0011 (5)0.0028 (5)0.0002 (5)
C10.0145 (7)0.0179 (7)0.0140 (7)0.0039 (6)0.0045 (5)0.0027 (6)
C20.0148 (7)0.0161 (7)0.0138 (7)0.0035 (6)0.0027 (5)0.0014 (6)
C30.0142 (7)0.0127 (7)0.0162 (7)0.0015 (5)0.0024 (6)0.0008 (5)
C40.0137 (6)0.0157 (7)0.0129 (6)0.0027 (6)0.0039 (5)0.0024 (5)
C50.0167 (10)0.0115 (9)0.0138 (9)0.0000.0031 (8)0.000
C60.0202 (7)0.0110 (7)0.0163 (7)0.0005 (6)0.0025 (6)0.0002 (5)
C70.0174 (7)0.0166 (7)0.0184 (7)0.0024 (6)0.0038 (6)0.0002 (6)
C80.0185 (7)0.0167 (7)0.0138 (7)0.0006 (6)0.0030 (6)0.0023 (6)
B10.0280 (13)0.0122 (11)0.0173 (11)0.0000.0096 (10)0.000
Geometric parameters (Å, º) top
Br1—C11.8953 (14)C3—H30.9500
F1—B11.3930 (18)C3—C41.387 (2)
F2—B11.3799 (18)C4—C81.382 (2)
N1—C41.4364 (18)C5—H50.9500
N1—C51.3311 (17)C6—C6i1.351 (3)
N1—C61.3867 (19)C6—H60.9500
C1—C21.385 (2)C7—H70.9500
C1—C71.387 (2)C7—C81.383 (2)
C2—H20.9500C8—H80.9500
C2—C31.389 (2)
C5—N1—C4123.87 (13)N1i—C5—H5125.7
C5—N1—C6108.76 (13)N1—C6—H6126.5
C6—N1—C4127.35 (12)C6i—C6—N1106.97 (8)
C2—C1—Br1120.01 (11)C6i—C6—H6126.5
C2—C1—C7121.65 (14)C1—C7—H7120.2
C7—C1—Br1118.34 (12)C8—C7—C1119.54 (14)
C1—C2—H2120.6C8—C7—H7120.2
C1—C2—C3118.77 (13)C4—C8—C7118.90 (14)
C3—C2—H2120.6C4—C8—H8120.5
C2—C3—H3120.3C7—C8—H8120.5
C4—C3—C2119.35 (14)F1i—B1—F1108.01 (18)
C4—C3—H3120.3F2—B1—F1110.28 (7)
C3—C4—N1119.62 (13)F2i—B1—F1i110.28 (7)
C8—C4—N1118.58 (13)F2i—B1—F1109.77 (7)
C8—C4—C3121.78 (14)F2—B1—F1i109.77 (7)
N1i—C5—N1108.53 (18)F2i—B1—F2108.73 (19)
N1—C5—H5125.7
Br1—C1—C2—C3178.42 (11)C4—N1—C5—N1i178.58 (15)
Br1—C1—C7—C8177.89 (12)C4—N1—C6—C6i178.37 (15)
N1—C4—C8—C7178.69 (13)C5—N1—C4—C3142.28 (12)
C1—C2—C3—C40.3 (2)C5—N1—C4—C836.09 (19)
C1—C7—C8—C40.7 (2)C5—N1—C6—C6i0.25 (19)
C2—C1—C7—C81.3 (2)C6—N1—C4—C336.1 (2)
C2—C3—C4—N1179.22 (13)C6—N1—C4—C8145.49 (15)
C2—C3—C4—C80.9 (2)C6—N1—C5—N1i0.10 (7)
C3—C4—C8—C70.4 (2)C7—C1—C2—C30.8 (2)
Symmetry code: (i) x+1, y, z+3/2.
Hydrogen-bond geometry (Å, º) top
D—H···AD—HH···AD···AD—H···A
C5—H5···F1ii0.952.293.156 (2)151
C6—H6···F2i0.952.393.1854 (19)140
Symmetry codes: (i) x+1, y, z+3/2; (ii) x, y1, z.
 

Acknowledgements

The authors thank the University of KwaZulu-Natal for the research facilities. DUT/HANT is acknowledged for funding the postdoctoral fellowship of HI.

References

Return to citationArduengo, A. J., Dias, H. V. R., Harlow, R. L. & Kline, M. (1992). J. Am. Chem. Soc. 114, 5530–5534.  CSD CrossRef CAS Web of Science Google Scholar
Return to citationBruker (2009). APEX2, COSMO and SAINT. Bruker AXS Inc., Madison, Wisconsin, USA.  Google Scholar
Return to citationDolomanov, O. V., Bourhis, L. J., Gildea, R. J., Howard, J. A. K. & Puschmann, H. (2009). J. Appl. Cryst. 42, 339–341.  Web of Science CrossRef CAS IUCr Journals Google Scholar
Return to citationFletcher, J. T., Sobczyk, J. M., Gwazdacz, S. C. & Blanck, A. J. (2018). Bioorg. Med. Chem. Lett. 28, 3320–3323.  CrossRef PubMed Google Scholar
Return to citationGarden, S. J., Gama, P. E., Tiekink, E. R. T., Wardell, J. L., Wardell, S. M. S. V. & Howie, R. A. (2010). Acta Cryst. E66, o1438–o1439.  Web of Science CSD CrossRef IUCr Journals Google Scholar
Return to citationIkhile, M. I., Bala, M. D. & Nyamori, V. O. (2011). S. Afr. J. Chem. 64, 101–104.  Google Scholar
Return to citationIkhile, M. I., Bala, M. D., Nyamori, V. O. & Ngila, J. C. (2013). Appl. Organom Chem. 27, 98–108.  CSD CrossRef Google Scholar
Return to citationIkhile, M. I., Nyamori, V. O. & Bala, M. D. (2012). Tetrahedron Lett. 53, 4925–4928.  CrossRef Google Scholar
Return to citationKadafour, A. N. W., Ibrahim, H. & Bala, M. D. (2022). J. Mol. Struct. 1262, 132997.  CSD CrossRef Google Scholar
Return to citationKrause, L., Herbst-Irmer, R., Sheldrick, G. M. & Stalke, D. (2015). J. Appl. Cryst. 48, 3–10.  Web of Science CSD CrossRef ICSD CAS IUCr Journals Google Scholar
Return to citationMercs, L. & Albrecht, M. (2010). Chem. Soc. Rev. 39, 1903–1912.  Web of Science CrossRef CAS PubMed Google Scholar
Return to citationNdlovu, S. N. P., Ibrahim, H. & Bala, M. D. (2017). J. Heterocycl. Chem. 54, 3646–3655.  CSD CrossRef Google Scholar
Return to citationPatil, A. S., Hoagland, P. A., Patil, A. S. & Bugarin, A. (2020). Future Med. Chem. 12, 2239–2275.  PubMed Google Scholar
Return to citationSheldrick, G. M. (2008). Acta Cryst. A64, 112–122.  Web of Science CrossRef CAS IUCr Journals Google Scholar
Return to citationSheldrick, G. M. (2015). Acta Cryst. C71, 3–8.  Web of Science CrossRef IUCr Journals Google Scholar

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