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

Journal logoIUCrDATA
ISSN: 2414-3146

6,7-Di­chloro-2-methyl-3-phenyl­quinoxaline

crossmark logo

aDepartment of Chemistry, Southern Illinois University Edwardsville, Edwardsville, IL 62026-1652, USA, and bDepartment of Chemistry & Biochemistry, Central Connecticut State University, 1619 Stanley Street, New Britain, CT 06053, USA
*Correspondence e-mail: [email protected]

Edited by M. Zeller, Purdue University, USA (Received 20 August 2026; accepted 27 August 2026; online 3 September 2026)

The title compound, C15H10Cl2N2, was synthesized using the acid catalyst NH4HF2 in a water/methanol solution. The dihedral angle between the phenyl ring and the quinoxaline unit is 39.80 (5)°. There is an inter­molecular hydrogen-bonding-like inter­action with a neighboring chlorine atom at a distance of 2.76 Å. The extended structure features offset-stacked quinoxaline units along the [100] direction.

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

Structure description

In general, quinoxalines are of inter­est as potential anti­bacterial (Parhi et al., 2013View full citation), anti­microbial (Singh et al., 2010View full citation), and anti­fungal medicines (Tang et al., 2022View full citation) and therefore exploring their synthesis and structures are of inter­est. The title compound was synthesized via a condensation reaction of a di­amine and diketone using a water/methanol solution containing the NH4HF2 catalyst (Lassagne et al., 2015View full citation).

The mol­ecular structure is shown in Fig. 1[link]. The quinoxaline ring system is essentially planar. The r.m.s. deviation of the di­chloro­quinoxaline unit (using atoms C1–C9, N1, N2, Cl1, and Cl2) is only 0.0604 Å. The quinoxaline moiety makes an angle of 39.80 (5)° with respect to the phenyl ring. There is a hydrogen-bonding-like inter­action between a carbon hydrogen and a neighboring chlorine atom (Table 1[link]). Mol­ecules stack along the [100] direction of the unit cell (Fig. 2[link]). Analysis of ring inter­actions using PLATON (Spek, 2009View full citation) indicats that the quinoxaline ring system (C1–C6,C8,C9,N1,N2) exhibits ππ stacking with inter­planar spacings of 3.5039 (7) Å [for neighbor at (1 − x, −y, z)], 3.4022 (7) Å [for neighbor at (Mathematical equation − x, y, −Mathematical equation + z)], and 3.3845 (7) Å [for neighbor at (Mathematical equation − x, y, 1/2 + z)] with slippages of 1.515, 3.582, and 3.565Å, respectively..

Table 1
Hydrogen-bond geometry (Å, °)

D—H⋯A D—H H⋯A DA D—H⋯A
C2—H2⋯Cl2i 0.95 2.76 3.704 (3) 175
Symmetry code: (i) Mathematical equation.
[Figure 1]
Figure 1
A view of the title molecule. Hydrogen atoms are omitted and displacement ellipsoids are drawn at the 50% probability level.
[Figure 2]
Figure 2
A view of the unit-cell packing along the [100] direction.

Synthesis and crystallization

In a 50 mL Erlenmeyer flask, 1.49 g of 1-phenyl-1,2-propane­dione (10.0 mmol) were added to 2 mL of H2O and 20 mL of a 2.5 x 10−3 M methanol solution of NH4HF2 (Lassagne et al., 2015View full citation). To this mixture 1.78 g of 4,5-di­chloro-1,2-phenyl­enedi­amine (10.0 mmol) were added. The solution was stirred for 24 h during which the product precipitated as a pale light-tan product. 2.65 g of crude product were isolated and recrysallized from methanol solution yielding 1.92 g of purified product (66%). Crystals for the diffraction study were isolated by the slow evaporation of 50/50 hexa­ne/ethyl acetate solutions. M.p: 426 K; 1H NMR (CDCl3, 300 MHz): δ = 2.78 (s, 3H), 7.55 (m, 3H), 7.64 (m, 2H), 8.17 (s, 1H), 8.22 (s, 1H); 13C NMR (CDCl3, 300 MHz): δ = 24.51, 128.85, 128.91, 129.16, 129.43, 129.84, 133.65, 134.12, 138.31, 139.77, 139.86, 153.98, 155.89.

Refinement

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

Table 2
Experimental details

Crystal data
Chemical formula C15H10Cl2N2
Mr 289.15
Crystal system, space group Orthorhombic, Aea2
Temperature (K) 150
a, b, c (Å) 13.7569 (4), 26.2508 (8), 7.1470 (2)
V3) 2580.99 (13)
Z 8
Radiation type Cu Kα
μ (mm−1) 4.40
Crystal size (mm) 0.21 × 0.11 × 0.06
 
Data collection
Diffractometer Bruker AXS D8 Quest
Absorption correction Multi-scan (SADABS; Krause et al., 2015View full citation)
Tmin, Tmax 0.500, 0.754
No. of measured, independent and observed [I > 2σ(I)] reflections 35150, 2788, 2646
Rint 0.064
(sin θ/λ)max−1) 0.640
 
Refinement
R[F2 > 2σ(F2)], wR(F2), S 0.029, 0.078, 1.11
No. of reflections 2788
No. of parameters 173
No. of restraints 1
H-atom treatment H-atom parameters constrained
Δρmax, Δρmin (e Å−3) 0.23, −0.28
Absolute structure Flack x determined using 1146 quotients [(I+)−(I)]/[(I+)+(I)] (Parsons et al., 2013View full citation)
Absolute structure parameter 0.004 (7)
Computer programs: APEX6 and SAINT (Bruker, 2026View full citation), SHELXT (Sheldrick, 2015aView full citation), SHELXL2025/1 (Sheldrick, 2015bView full citation), OLEX2 (Dolomanov et al., 2009View full citation), ORTEP-3 for Windows (Farrugia, 2012View full citation) and Mercury (Macrae et al., 2020View full citation).

Structural data


Computing details top

6,7-Dichloro-2-methyl-3-phenylquinoxaline top
Crystal data top
C15H10Cl2N2Dx = 1.488 Mg m3
Mr = 289.15Melting point: 426 K
Orthorhombic, Aea2Cu Kα radiation, λ = 1.54178 Å
a = 13.7569 (4) ÅCell parameters from 9889 reflections
b = 26.2508 (8) Åθ = 3.4–80.1°
c = 7.1470 (2) ŵ = 4.40 mm1
V = 2580.99 (13) Å3T = 150 K
Z = 8Plate, clear colourless
F(000) = 11840.21 × 0.11 × 0.06 mm
Data collection top
Bruker AXS D8 Quest
diffractometer
2788 independent reflections
Radiation source: I-mu-S 3.0 microsource X-ray tube2646 reflections with I > 2σ(I)
HELIOS multilayer Montel optics monochromatorRint = 0.064
Detector resolution: 7.4074 pixels mm-1θmax = 80.6°, θmin = 3.4°
ω and phi scansh = 1717
Absorption correction: multi-scan
(SADABS; Krause et al., 2015)
k = 3333
Tmin = 0.500, Tmax = 0.754l = 89
35150 measured reflections
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)] = 0.029H-atom parameters constrained
wR(F2) = 0.078 w = 1/[σ2(Fo2) + (0.0438P)2 + 0.4866P]
where P = (Fo2 + 2Fc2)/3
S = 1.11(Δ/σ)max = 0.001
2788 reflectionsΔρmax = 0.23 e Å3
173 parametersΔρmin = 0.28 e Å3
1 restraintAbsolute structure: Flack x determined using 1146 quotients [(I+)-(I-)]/[(I+)+(I-)] (Parsons et al., 2013)
Primary atom site location: dualAbsolute structure parameter: 0.004 (7)
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.

Refinement. Hydrogen atoms on sp2 and sp3 carbons were placed at calculated positions with a C-H distance of 0.95 Å and 0.98 Å and were included in the refinement in riding motion approximation with Uiso = 1.2Ueq or 1.5Ueq of the carrier atom, respectively.

Fractional atomic coordinates and isotropic or equivalent isotropic displacement parameters (Å2) top
xyzUiso*/Ueq
C10.37186 (15)0.47901 (10)0.6000 (4)0.0262 (5)
C30.37034 (16)0.56404 (10)0.4771 (4)0.0284 (5)
C100.37433 (14)0.32221 (9)0.4945 (4)0.0242 (5)
C150.42966 (17)0.30390 (9)0.3437 (3)0.0258 (5)
H150.4668100.3270480.2707550.031*
N10.37599 (15)0.44750 (9)0.7518 (3)0.0280 (5)
Cl10.36731 (4)0.62940 (2)0.51359 (11)0.03628 (18)
C130.37601 (17)0.21837 (10)0.4054 (4)0.0303 (5)
H130.3774080.1830490.3766370.036*
C60.37267 (16)0.45912 (9)0.4161 (4)0.0242 (5)
C120.31946 (17)0.23595 (9)0.5524 (3)0.0306 (5)
H120.2812490.2127160.6229430.037*
Cl20.37977 (5)0.58627 (2)0.10644 (10)0.03599 (18)
C40.37379 (16)0.54433 (10)0.2935 (4)0.0275 (5)
C50.37397 (16)0.49310 (10)0.2613 (4)0.0267 (5)
H50.3749560.4803070.1369610.032*
C80.37819 (16)0.39822 (10)0.7220 (4)0.0250 (5)
C140.43071 (17)0.25251 (10)0.3002 (4)0.0291 (5)
H140.4688080.2405530.1984160.035*
N20.37302 (13)0.40786 (8)0.3852 (3)0.0259 (5)
C20.36965 (16)0.53235 (11)0.6280 (4)0.0294 (5)
H20.3677000.5459670.7510590.035*
C90.37394 (14)0.37773 (10)0.5335 (4)0.0232 (5)
C110.31853 (16)0.28751 (8)0.5968 (4)0.0276 (4)
H110.2795630.2992770.6976630.033*
C70.38880 (19)0.36530 (10)0.8927 (4)0.0299 (5)
H7A0.3251630.3514820.9276220.045*
H7B0.4145780.3857270.9961430.045*
H7C0.4335670.3372160.8655500.045*
Atomic displacement parameters (Å2) top
U11U22U33U12U13U23
C10.0260 (11)0.0266 (13)0.0260 (11)0.0011 (8)0.0006 (10)0.0021 (11)
C30.0277 (11)0.0226 (13)0.0350 (14)0.0003 (8)0.0032 (9)0.0036 (10)
C100.0257 (10)0.0242 (11)0.0228 (12)0.0017 (7)0.0034 (8)0.0012 (10)
C150.0287 (10)0.0266 (11)0.0221 (10)0.0002 (9)0.0007 (8)0.0006 (8)
N10.0320 (10)0.0285 (11)0.0235 (10)0.0005 (8)0.0006 (7)0.0029 (9)
Cl10.0454 (3)0.0214 (3)0.0421 (4)0.0014 (2)0.0073 (3)0.0051 (2)
C130.0405 (13)0.0215 (13)0.0289 (13)0.0001 (9)0.0036 (11)0.0014 (10)
C60.0256 (11)0.0218 (12)0.0252 (11)0.0012 (8)0.0003 (8)0.0007 (10)
C120.0354 (12)0.0287 (12)0.0278 (13)0.0049 (9)0.0008 (8)0.0018 (8)
Cl20.0506 (3)0.0257 (3)0.0316 (3)0.0025 (2)0.0014 (3)0.0041 (2)
C40.0281 (11)0.0266 (13)0.0278 (13)0.0002 (9)0.0006 (9)0.0014 (10)
C50.0303 (12)0.0256 (12)0.0241 (13)0.0006 (9)0.0005 (8)0.0000 (10)
C80.0249 (11)0.0268 (12)0.0234 (12)0.0001 (8)0.0003 (8)0.0026 (10)
C140.0332 (11)0.0294 (11)0.0246 (10)0.0028 (10)0.0008 (9)0.0028 (9)
N20.0281 (10)0.0256 (12)0.0240 (11)0.0018 (7)0.0002 (8)0.0016 (8)
C20.0346 (12)0.0270 (13)0.0267 (14)0.0006 (8)0.0027 (9)0.0056 (10)
C90.0225 (9)0.0252 (12)0.0220 (11)0.0005 (7)0.0005 (8)0.0001 (9)
C110.0292 (10)0.0281 (11)0.0257 (10)0.0000 (8)0.0019 (9)0.0018 (9)
C70.0374 (12)0.0296 (14)0.0226 (12)0.0005 (10)0.0029 (10)0.0008 (10)
Geometric parameters (Å, º) top
C1—N11.365 (4)C6—N21.364 (3)
C1—C61.415 (4)C12—H120.9500
C1—C21.415 (4)C12—C111.390 (3)
C3—Cl11.736 (3)Cl2—C41.734 (3)
C3—C41.411 (4)C4—C51.364 (4)
C3—C21.362 (4)C5—H50.9500
C10—C151.404 (3)C8—C91.451 (4)
C10—C91.484 (3)C8—C71.502 (4)
C10—C111.397 (3)C14—H140.9500
C15—H150.9500N2—C91.323 (4)
C15—C141.385 (3)C2—H20.9500
N1—C81.311 (3)C11—H110.9500
C13—H130.9500C7—H7A0.9800
C13—C121.386 (4)C7—H7B0.9800
C13—C141.391 (4)C7—H7C0.9800
C6—C51.421 (3)
N1—C1—C6121.0 (2)C6—C5—H5120.4
N1—C1—C2119.2 (3)C4—C5—C6119.2 (2)
C6—C1—C2119.8 (3)C4—C5—H5120.4
C4—C3—Cl1120.2 (2)N1—C8—C9121.0 (2)
C2—C3—Cl1119.0 (2)N1—C8—C7116.0 (2)
C2—C3—C4120.8 (2)C9—C8—C7123.0 (2)
C15—C10—C9118.8 (2)C15—C14—C13120.0 (2)
C11—C10—C15118.4 (2)C15—C14—H14120.0
C11—C10—C9122.7 (2)C13—C14—H14120.0
C10—C15—H15119.6C9—N2—C6117.4 (2)
C14—C15—C10120.8 (2)C1—C2—H2120.2
C14—C15—H15119.6C3—C2—C1119.5 (2)
C8—N1—C1118.0 (2)C3—C2—H2120.2
C12—C13—H13120.0C8—C9—C10122.6 (2)
C12—C13—C14119.9 (2)N2—C9—C10115.9 (2)
C14—C13—H13120.0N2—C9—C8121.5 (2)
C1—C6—C5119.5 (2)C10—C11—H11119.7
N2—C6—C1121.0 (2)C12—C11—C10120.7 (2)
N2—C6—C5119.6 (2)C12—C11—H11119.7
C13—C12—H12119.9C8—C7—H7A109.5
C13—C12—C11120.1 (2)C8—C7—H7B109.5
C11—C12—H12119.9C8—C7—H7C109.5
C3—C4—Cl2119.1 (2)H7A—C7—H7B109.5
C5—C4—C3121.2 (2)H7A—C7—H7C109.5
C5—C4—Cl2119.7 (2)H7B—C7—H7C109.5
C1—N1—C8—C91.5 (3)C6—N2—C9—C10179.98 (18)
C1—N1—C8—C7176.4 (2)C6—N2—C9—C82.3 (3)
C1—C6—C5—C40.4 (3)C12—C13—C14—C150.8 (4)
C1—C6—N2—C90.9 (3)Cl2—C4—C5—C6177.70 (17)
C3—C4—C5—C61.3 (3)C4—C3—C2—C10.4 (4)
C10—C15—C14—C130.5 (3)C5—C6—N2—C9178.54 (19)
C15—C10—C9—C8139.0 (2)C14—C13—C12—C111.1 (4)
C15—C10—C9—N238.6 (3)N2—C6—C5—C4179.9 (2)
C15—C10—C11—C121.3 (3)C2—C1—N1—C8179.85 (19)
N1—C1—C6—C5176.4 (2)C2—C1—C6—C51.7 (3)
N1—C1—C6—N23.1 (3)C2—C1—C6—N2178.80 (19)
N1—C1—C2—C3176.8 (2)C2—C3—C4—Cl2177.28 (18)
N1—C8—C9—C10178.79 (18)C2—C3—C4—C51.7 (4)
N1—C8—C9—N23.7 (3)C9—C10—C15—C14178.8 (2)
Cl1—C3—C4—Cl22.5 (3)C9—C10—C11—C12178.5 (2)
Cl1—C3—C4—C5178.48 (17)C11—C10—C15—C141.5 (3)
Cl1—C3—C2—C1179.85 (16)C11—C10—C9—C843.8 (3)
C13—C12—C11—C100.0 (4)C11—C10—C9—N2138.6 (2)
C6—C1—N1—C81.7 (3)C7—C8—C9—C103.4 (3)
C6—C1—C2—C31.3 (3)C7—C8—C9—N2174.1 (2)
Hydrogen-bond geometry (Å, º) top
D—H···AD—HH···AD···AD—H···A
C2—H2···Cl2i0.952.763.704 (3)175
Symmetry code: (i) x, y, z+1.
 

Acknowledgements

This work was supported by a CCSU-AAUP grant. All data were collected at Purdue University by Dr Matthias Zeller as part of the American Crystallographic Association Summer Course (2026). Dr Zeller also assisted with the refinement.

References

Return to citationBruker (2026). APEX6 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 citationFarrugia, L. J. (2012). J. Appl. Cryst. 45, 849–854.  Web of Science CrossRef CAS IUCr Journals 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 citationLassagne, F., Chevallier, F., Roisnel, T., Dorcet, V. & Mongin, F. (2015). J. Synth. Org. Chem. 47, 2680–2689.  CAS Google Scholar
Return to citationMacrae, C. F., Sovago, I., Cottrell, S. J., Galek, P. T. A., McCabe, P., Pidcock, E., Platings, M., Shields, G. P., Stevens, J. S., Towler, M. & Wood, P. A. (2020). J. Appl. Cryst. 53, 226–235.  Web of Science CrossRef CAS IUCr Journals Google Scholar
Return to citationParhi, A. K., Zhang, Y., Saionz, K. W., Pradhan, P., Kaul, M., Trivedi, K., Pilch, D. S. & LaVoie, E. J. (2013). Bioorg. Med. Chem. Lett. 23, 4968–4974.  CrossRef CAS Google Scholar
Return to citationParsons, S., Flack, H. D. & Wagner, T. (2013). Acta Cryst. B69, 249–259.  Web of Science CSD CrossRef CAS IUCr Journals Google Scholar
Return to citationSheldrick, G. M. (2015a). Acta Cryst. A71, 3–8.  Web of Science CrossRef IUCr Journals Google Scholar
Return to citationSheldrick, G. M. (2015b). Acta Cryst. C71, 3–8.  Web of Science CrossRef IUCr Journals Google Scholar
Return to citationSingh, D. P., Deivedi, S. K., Hashim, S. R. & Singhal, R. G. (2010). Pharmaceuticals 3, 2416–2425.  CrossRef CAS PubMed Google Scholar
Return to citationSpek, A. L. (2009). Acta Cryst. D65, 148–155.  Web of Science CrossRef CAS IUCr Journals Google Scholar
Return to citationTang, X., Zhou, G., Zhan, W., Hu, D., Zhou, R., Sun, N., Chen, S., Wu, W. & Xue, W. (2022). RCS Adv. 12, 2399–2407.  CAS Google Scholar

This is an open-access article distributed under the terms of the Creative Commons Attribution (CC-BY) Licence, which permits unrestricted use, distribution, and reproduction in any medium, provided the original authors and source are cited.

Journal logoIUCrDATA
ISSN: 2414-3146