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

Journal logoCRYSTALLOGRAPHIC
COMMUNICATIONS
ISSN: 2056-9890

3-(2,4-Di­chloro­phen­yl)-5-(4-fluoro­phen­yl)-2-phenyl-7-(tri­fluoro­meth­yl)pyrazolo­[1,5-a]pyrimidine

aCollege of Pharmacy, Liaoning University, Shenyang 110036, People's Republic of China, bPanjin Vocational and Technical College, Panjin 120010, People's Republic of China, and cTianjin Key Laboratory of Molecular Design and Drug Discovery, State Key Laboratory of Drug Delivery Technology and Pharmacokinetics, Tianjin Institute of Pharmaceutical Research, Tianjin 300193, People's Republic of China
*Correspondence e-mail: caizq@tjipr.com

(Received 18 May 2012; accepted 24 May 2012; online 31 May 2012)

In the title compound, C25H13Cl2F4N3, there are four planar systems, viz. three benzene rings and a pyrazolo­[1,5-a]pyrim­idine system [r.m.s. deviation = 0.002 Å]. The dihedral angle between the dichloro­phenyl ring and the unsubstituted phenyl ring is 69.95 (5)°, while that between the fluoro­phenyl ring and the unsubstituted phenyl ring is 7.97 (10)°. The crystal packing is dominated by van der Waals inter­actions. A Cl⋯Cl inter­action of 3.475 (3) Å also occurs.

Related literature

For background information and the related structures, see: Liu et al. (2012[Liu, J., Cai, Z.-Q., Wang, Y., Jiang, M.-J. & Xu, L.-F. (2012). Acta Cryst. E68, o1515.]); Frizzo et al. (2008[Frizzo, C. P., Campos, P. T., Marzari, M. R. B., Machado, P. & Martins, M. A. P. (2008). Acta Cryst. E64, o212.]); Bui et al. (2009[Bui, T. T., Dahaoui, S., Lecomte, C., Desiraju, G. R. & Espinosa, E. (2009). Angew. Chem. Int. Ed. 48, 3838-3841.]). For the synthesis of other pyrozolo[1,5-a]pyrimidine derivatives and for their pharmacological applications, see: Fraley et al. (2012[Fraley, M. E., Rubino, R. S., Hoffman, W. F., Hambaugh, S. R., Arrington, K. L., Hungate, R. W., Bilodeau, M. T., Tebben, A. J., Rutledge, R. Z., Kendall, R. L., McFall, R. C., Huckle, W. R., Coll, K. E. & Thomas, K. A. (2012). Bioorg. Med. Chem. Lett. 12, 3537-3541.]); Dalinger et al. (2005[Dalinger, I. L., Vatsadse, I. A., Shevelev, S. A. & Ivachtchenko, A. V. (2005). ACS Comb. Sci. 7, 236-245.]); Dennis et al. (2004[Dennis, R. C., Kathyn, E. C. & John, A. K. (2004). Bioorg. Med. Chem. Lett. 14, 5681-5684.]).

[Scheme 1]

Experimental

Crystal data
  • C25H13Cl2F4N3

  • Mr = 502.28

  • Monoclinic, P 21 /c

  • a = 9.0826 (18) Å

  • b = 9.0606 (18) Å

  • c = 27.259 (6) Å

  • β = 99.46 (3)°

  • V = 2212.7 (8) Å3

  • Z = 4

  • Mo Kα radiation

  • μ = 0.35 mm−1

  • T = 293 K

  • 0.24 × 0.22 × 0.20 mm

Data collection
  • Rigaku Saturn diffractometer

  • Absorption correction: multi-scan (CrystalClear; Rigaku/MSC, 2005[Rigaku/MSC (2005). CrystalClear. Rigaku/MSC, The Woodlands, Texas, USA.]) Tmin = 0.922, Tmax = 0.934

  • 15847 measured reflections

  • 3895 independent reflections

  • 3056 reflections with I > 2σ(I)

  • Rint = 0.041

Refinement
  • R[F2 > 2σ(F2)] = 0.051

  • wR(F2) = 0.143

  • S = 1.09

  • 3895 reflections

  • 308 parameters

  • H-atom parameters constrained

  • Δρmax = 0.37 e Å−3

  • Δρmin = −0.46 e Å−3

Data collection: RAPID-AUTO (Rigaku, 1998)[Rigaku (1998). RAPID-AUTO. Rigaku Corporation, Tokyo, Japan.]; cell refinement: RAPID-AUTO[Rigaku (1998). RAPID-AUTO. Rigaku Corporation, Tokyo, Japan.]; data reduction: CrystalClear (Rigaku/MSC, 2005[Rigaku/MSC (2005). CrystalClear. Rigaku/MSC, The Woodlands, Texas, USA.]); 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: SHELXTL.

Supporting information


Comment top

The pyrazolo[1,5-a]pyrimidine structural motif may be found in a large number of pharmaceutical agents with a diverse range of physiological activities, for example, antiepileptic agents, anxiolytics, antidepressants, agents for treatment of sleep disorders and oncolytics. A series of antagonist of protease-activated PAR2 receptors were reported (Fraley, et al., 2012 and Dalinger, et al., 2005). As a part of our ongoing study of pyrazolo[1,5-a]pyrimidine derivatives containing 5-(4-fluorophenyl) and 3-(2,4-dichlorophenyl) substituents (Liu, et al., 2012), we report herein the crystal structure of the title compound.

The title molecule (Fig. 1) bond lengths and angles are generally within normal ranges. The dihedral angles between fluorobenzene ring and benzene ring is 7.97°. The dihedral angle between dichlorophenyl ring and benzene ring is 69.95°. The torsion angles C(16)—C(17)—C(18)—C(19), N(2)—N(1)—C(1)—C(2), C(21)—C(22)—C(23)—F(4) and C(10)—C(11)—C(12)—Cl(2) are -178.71 (19), 175.35 (17), -178.4 (2) and -179.9 (2), respectively. The crystal structure is held together by van der Waals forces and pronounced Cl···Cl interaction of 3.475 (3) Å (Bui, et al., 2009).

Related literature top

For background information and the related structures, see: Liu et al. (2012); Frizzo et al. (2008); Bui et al. (2009). For the synthesis of other pyrozolo[1,5-a]pyrimidine derivatives and for their pharmacological applications, see: Fraley et al. (2012); Dalinger et al. (2005); Dennis et al. (2004).

Experimental top

A mixture of the corresponding 4-(2,4-dichlorophenyl)-3-phenyl-1H-pyrazol-5-amine (1.50 g, 4.93 mmol) and the 4,4,4-trifluoro-1-(4-fluorophenyl)butane-1,3-dione (1.27 g, 5.42 6 mmol) in a flask (25 mL) was heated at 453–458 K for 2.5 h, allowing elimination of the water evolved. After cooling to room temperature, the solid in the flask was recrystallised from methanol to yield the title compound as a yellow solid (1.55 g, 62.58%). Crystals suitable for X-ray analysis were obtained from EtOH : EtOAc(1:1) solution mixture by slow evaporation.

Refinement top

All H atoms were geometrically positioned (C—H 0.93 Å) and treated as riding, with Uiso(H) = 1.2Ueq(C).Due to lack of heavy atoms, Friedel pairs were merged in refinement.

Computing details top

Data collection: RAPID-AUTO (Rigaku, 1998); cell refinement: RAPID-AUTO (Rigaku, 1998); data reduction: CrystalClear (Rigaku/MSC, 2005); 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: SHELXTL (Sheldrick, 2008).

Figures top
[Figure 1] Fig. 1. The structure of C25H13Cl2F4N3 with all non-H atom-labelling scheme and ellipsoids drawn at the 50% probability level.
3-(2,4-Dichlorophenyl)-5-(4-fluorophenyl)-2-phenyl-7- (trifluoromethyl)pyrazolo[1,5-a]pyrimidine top
Crystal data top
C25H13Cl2F4N3F(000) = 1016
Mr = 502.28Dx = 1.508 Mg m3
Monoclinic, P21/cMo Kα radiation, λ = 0.71073 Å
Hall symbol: -P 2ybcCell parameters from 5009 reflections
a = 9.0826 (18) Åθ = 2.3–27.9°
b = 9.0606 (18) ŵ = 0.35 mm1
c = 27.259 (6) ÅT = 293 K
β = 99.46 (3)°Prism, yellow
V = 2212.7 (8) Å30.24 × 0.22 × 0.20 mm
Z = 4
Data collection top
Rigaku Saturn
diffractometer
3895 independent reflections
Radiation source: rotating anode3056 reflections with I > 2σ(I)
Confocal monochromatorRint = 0.041
ω scansθmax = 25.0°, θmin = 2.4°
Absorption correction: multi-scan
(CrystalClear; Rigaku/MSC, 2005)
h = 1010
Tmin = 0.922, Tmax = 0.934k = 107
15847 measured reflectionsl = 3032
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)] = 0.051H-atom parameters constrained
wR(F2) = 0.143 w = 1/[σ2(Fo2) + (0.0833P)2 + 0.040P]
where P = (Fo2 + 2Fc2)/3
S = 1.09(Δ/σ)max = 0.001
3895 reflectionsΔρmax = 0.37 e Å3
308 parametersΔρmin = 0.46 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: 0.028 (3)
Crystal data top
C25H13Cl2F4N3V = 2212.7 (8) Å3
Mr = 502.28Z = 4
Monoclinic, P21/cMo Kα radiation
a = 9.0826 (18) ŵ = 0.35 mm1
b = 9.0606 (18) ÅT = 293 K
c = 27.259 (6) Å0.24 × 0.22 × 0.20 mm
β = 99.46 (3)°
Data collection top
Rigaku Saturn
diffractometer
3895 independent reflections
Absorption correction: multi-scan
(CrystalClear; Rigaku/MSC, 2005)
3056 reflections with I > 2σ(I)
Tmin = 0.922, Tmax = 0.934Rint = 0.041
15847 measured reflections
Refinement top
R[F2 > 2σ(F2)] = 0.0510 restraints
wR(F2) = 0.143H-atom parameters constrained
S = 1.09Δρmax = 0.37 e Å3
3895 reflectionsΔρmin = 0.46 e Å3
308 parameters
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
Cl11.31929 (9)0.44828 (10)0.47969 (3)0.0868 (3)
Cl20.94948 (12)0.20741 (11)0.59085 (3)0.1024 (4)
F11.09069 (17)0.35785 (15)0.20644 (5)0.0619 (4)
F21.2102 (2)0.5478 (2)0.23496 (6)0.0886 (6)
F30.9955 (2)0.56762 (17)0.18909 (5)0.0831 (6)
F40.24299 (18)0.7892 (2)0.32444 (6)0.0917 (6)
N11.2012 (2)0.33960 (19)0.31669 (6)0.0413 (4)
N21.0698 (2)0.41358 (18)0.31156 (6)0.0385 (4)
N30.8699 (2)0.47095 (19)0.35650 (6)0.0401 (4)
C11.2191 (2)0.2873 (2)0.36384 (7)0.0388 (5)
C21.3488 (2)0.1903 (2)0.37979 (8)0.0432 (5)
C31.4710 (3)0.1954 (3)0.35534 (9)0.0542 (6)
H31.47370.26490.33040.065*
C41.5895 (3)0.0981 (3)0.36768 (10)0.0670 (8)
H41.67070.10230.35090.080*
C51.5865 (3)0.0044 (3)0.40471 (11)0.0727 (9)
H51.66550.07010.41290.087*
C61.4674 (4)0.0098 (3)0.42954 (11)0.0731 (8)
H61.46640.07820.45490.088*
C71.3487 (3)0.0857 (3)0.41720 (9)0.0594 (7)
H71.26780.08020.43410.071*
C81.1017 (2)0.3286 (2)0.38894 (7)0.0395 (5)
C91.0711 (2)0.2977 (2)0.43952 (7)0.0402 (5)
C101.1586 (3)0.3478 (2)0.48288 (8)0.0468 (6)
C111.1222 (3)0.3204 (3)0.52918 (8)0.0553 (7)
H111.18310.35510.55760.066*
C120.9960 (3)0.2419 (3)0.53295 (8)0.0592 (7)
C130.9050 (3)0.1923 (3)0.49108 (10)0.0747 (9)
H130.81810.14070.49360.090*
C140.9437 (3)0.2199 (3)0.44528 (9)0.0620 (7)
H140.88200.18490.41700.074*
C151.0032 (2)0.4081 (2)0.35423 (7)0.0378 (5)
C160.8006 (2)0.5390 (2)0.31605 (7)0.0386 (5)
C170.8643 (3)0.5463 (2)0.27171 (8)0.0424 (5)
H170.81290.59370.24380.051*
C180.9989 (2)0.4847 (2)0.27000 (7)0.0394 (5)
C191.0751 (3)0.4900 (3)0.22528 (8)0.0461 (6)
C200.6539 (2)0.6071 (2)0.31877 (7)0.0396 (5)
C210.5912 (3)0.7106 (3)0.28349 (9)0.0493 (6)
H210.64270.73810.25810.059*
C220.4542 (3)0.7726 (3)0.28576 (9)0.0573 (7)
H220.41300.84190.26230.069*
C230.3796 (3)0.7307 (3)0.32307 (10)0.0576 (7)
C240.4372 (3)0.6316 (3)0.35902 (9)0.0564 (6)
H240.38480.60610.38440.068*
C250.5753 (3)0.5702 (2)0.35670 (8)0.0473 (6)
H250.61630.50300.38090.057*
Atomic displacement parameters (Å2) top
U11U22U33U12U13U23
Cl10.0765 (6)0.1313 (7)0.0511 (4)0.0570 (5)0.0062 (4)0.0089 (4)
Cl20.1446 (9)0.1281 (8)0.0411 (4)0.0592 (6)0.0350 (5)0.0028 (4)
F10.0830 (11)0.0617 (9)0.0432 (8)0.0200 (7)0.0171 (7)0.0052 (6)
F20.0899 (13)0.1194 (15)0.0648 (10)0.0465 (11)0.0371 (9)0.0103 (9)
F30.1145 (14)0.0927 (12)0.0507 (9)0.0534 (10)0.0388 (9)0.0330 (8)
F40.0567 (10)0.1403 (16)0.0836 (12)0.0343 (10)0.0276 (9)0.0172 (11)
N10.0423 (11)0.0467 (10)0.0346 (9)0.0032 (8)0.0056 (8)0.0020 (8)
N20.0449 (11)0.0409 (10)0.0303 (9)0.0002 (8)0.0075 (8)0.0001 (7)
N30.0425 (10)0.0471 (10)0.0315 (9)0.0027 (8)0.0083 (8)0.0011 (8)
C10.0382 (12)0.0458 (12)0.0321 (11)0.0077 (9)0.0049 (9)0.0040 (9)
C20.0425 (13)0.0500 (13)0.0356 (11)0.0023 (10)0.0021 (10)0.0076 (10)
C30.0491 (14)0.0662 (15)0.0459 (14)0.0023 (12)0.0033 (11)0.0048 (12)
C40.0484 (16)0.087 (2)0.0648 (17)0.0074 (14)0.0059 (13)0.0123 (16)
C50.0590 (19)0.0739 (18)0.080 (2)0.0197 (15)0.0047 (16)0.0118 (16)
C60.080 (2)0.0664 (17)0.0702 (19)0.0159 (16)0.0042 (16)0.0117 (15)
C70.0614 (16)0.0612 (15)0.0560 (16)0.0081 (13)0.0108 (13)0.0055 (12)
C80.0430 (12)0.0447 (12)0.0299 (10)0.0063 (9)0.0036 (9)0.0008 (9)
C90.0408 (12)0.0465 (12)0.0320 (11)0.0018 (10)0.0028 (9)0.0022 (9)
C100.0486 (14)0.0560 (14)0.0344 (12)0.0109 (11)0.0024 (10)0.0003 (10)
C110.0632 (16)0.0666 (16)0.0337 (12)0.0140 (13)0.0010 (11)0.0032 (11)
C120.0747 (18)0.0703 (16)0.0346 (13)0.0133 (14)0.0148 (12)0.0029 (11)
C130.0732 (19)0.104 (2)0.0478 (15)0.0433 (17)0.0131 (14)0.0027 (15)
C140.0591 (16)0.0897 (19)0.0355 (13)0.0285 (14)0.0028 (11)0.0048 (12)
C150.0424 (12)0.0442 (12)0.0274 (10)0.0045 (9)0.0071 (9)0.0028 (9)
C160.0439 (12)0.0378 (11)0.0338 (11)0.0055 (9)0.0052 (9)0.0028 (9)
C170.0494 (14)0.0440 (12)0.0341 (11)0.0012 (10)0.0074 (10)0.0014 (9)
C180.0518 (14)0.0371 (11)0.0303 (11)0.0035 (10)0.0095 (10)0.0006 (9)
C190.0576 (15)0.0468 (13)0.0358 (12)0.0053 (11)0.0133 (11)0.0039 (10)
C200.0407 (12)0.0421 (12)0.0362 (11)0.0068 (9)0.0064 (9)0.0043 (9)
C210.0441 (13)0.0639 (15)0.0404 (12)0.0012 (11)0.0080 (10)0.0047 (11)
C220.0495 (14)0.0713 (16)0.0504 (14)0.0128 (12)0.0064 (12)0.0111 (12)
C230.0412 (14)0.0759 (17)0.0563 (15)0.0061 (12)0.0093 (12)0.0060 (13)
C240.0552 (15)0.0684 (16)0.0504 (14)0.0040 (13)0.0227 (12)0.0013 (13)
C250.0540 (14)0.0510 (13)0.0389 (12)0.0036 (11)0.0134 (11)0.0012 (10)
Geometric parameters (Å, º) top
Cl1—C101.734 (2)C8—C91.477 (3)
Cl2—C121.728 (2)C9—C141.386 (3)
F1—C191.320 (3)C9—C101.387 (3)
F2—C191.320 (3)C10—C111.379 (3)
F3—C191.325 (2)C11—C121.367 (3)
F4—C231.356 (3)C11—H110.9300
N1—C11.354 (3)C12—C131.370 (3)
N1—N21.356 (2)C13—C141.375 (3)
N2—C181.369 (3)C13—H130.9300
N2—C151.397 (3)C14—H140.9300
N3—C161.328 (3)C16—C171.425 (3)
N3—C151.349 (3)C16—C201.481 (3)
C1—C81.409 (3)C17—C181.352 (3)
C1—C21.477 (3)C17—H170.9300
C2—C31.386 (3)C18—C191.498 (3)
C2—C71.392 (3)C20—C251.390 (3)
C3—C41.389 (4)C20—C211.396 (3)
C3—H30.9300C21—C221.376 (3)
C4—C51.375 (4)C21—H210.9300
C4—H40.9300C22—C231.365 (4)
C5—C61.369 (4)C22—H220.9300
C5—H50.9300C23—C241.368 (4)
C6—C71.380 (4)C24—C251.384 (3)
C6—H60.9300C24—H240.9300
C7—H70.9300C25—H250.9300
C8—C151.391 (3)
C1—N1—N2103.71 (17)C12—C13—H13120.4
N1—N2—C18127.17 (18)C14—C13—H13120.4
N1—N2—C15112.99 (16)C13—C14—C9122.6 (2)
C18—N2—C15119.81 (18)C13—C14—H14118.7
C16—N3—C15117.66 (18)C9—C14—H14118.7
N1—C1—C8112.68 (18)N3—C15—C8131.98 (19)
N1—C1—C2116.95 (19)N3—C15—N2122.52 (18)
C8—C1—C2130.22 (19)C8—C15—N2105.50 (19)
C3—C2—C7118.2 (2)N3—C16—C17121.5 (2)
C3—C2—C1120.1 (2)N3—C16—C20117.33 (19)
C7—C2—C1121.6 (2)C17—C16—C20121.14 (19)
C2—C3—C4120.8 (2)C18—C17—C16120.4 (2)
C2—C3—H3119.6C18—C17—H17119.8
C4—C3—H3119.6C16—C17—H17119.8
C5—C4—C3119.9 (3)C17—C18—N2118.08 (19)
C5—C4—H4120.0C17—C18—C19123.80 (19)
C3—C4—H4120.0N2—C18—C19118.1 (2)
C6—C5—C4119.9 (3)F1—C19—F2106.4 (2)
C6—C5—H5120.0F1—C19—F3105.79 (17)
C4—C5—H5120.0F2—C19—F3108.3 (2)
C5—C6—C7120.4 (3)F1—C19—C18112.40 (18)
C5—C6—H6119.8F2—C19—C18112.87 (18)
C7—C6—H6119.8F3—C19—C18110.76 (19)
C6—C7—C2120.7 (3)C25—C20—C21118.2 (2)
C6—C7—H7119.6C25—C20—C16120.87 (19)
C2—C7—H7119.6C21—C20—C16120.9 (2)
C15—C8—C1105.08 (18)C22—C21—C20120.9 (2)
C15—C8—C9122.3 (2)C22—C21—H21119.6
C1—C8—C9132.56 (19)C20—C21—H21119.6
C14—C9—C10116.2 (2)C23—C22—C21118.9 (2)
C14—C9—C8119.36 (18)C23—C22—H22120.6
C10—C9—C8124.3 (2)C21—C22—H22120.6
C11—C10—C9122.1 (2)F4—C23—C22118.7 (2)
C11—C10—Cl1118.08 (17)F4—C23—C24118.7 (2)
C9—C10—Cl1119.85 (17)C22—C23—C24122.6 (2)
C12—C11—C10119.5 (2)C23—C24—C25118.3 (2)
C12—C11—H11120.2C23—C24—H24120.9
C10—C11—H11120.2C25—C24—H24120.9
C11—C12—C13120.4 (2)C24—C25—C20121.2 (2)
C11—C12—Cl2119.78 (19)C24—C25—H25119.4
C13—C12—Cl2119.8 (2)C20—C25—H25119.4
C12—C13—C14119.2 (2)
C1—N1—N2—C18178.37 (19)C1—C8—C15—N3177.8 (2)
C1—N1—N2—C150.6 (2)C9—C8—C15—N30.1 (3)
N2—N1—C1—C80.7 (2)C1—C8—C15—N22.0 (2)
N2—N1—C1—C2175.35 (17)C9—C8—C15—N2179.81 (18)
N1—C1—C2—C322.1 (3)N1—N2—C15—N3178.07 (17)
C8—C1—C2—C3162.6 (2)C18—N2—C15—N30.1 (3)
N1—C1—C2—C7153.9 (2)N1—N2—C15—C81.7 (2)
C8—C1—C2—C721.4 (3)C18—N2—C15—C8179.63 (17)
C7—C2—C3—C40.4 (3)C15—N3—C16—C170.2 (3)
C1—C2—C3—C4175.6 (2)C15—N3—C16—C20179.71 (17)
C2—C3—C4—C50.3 (4)N3—C16—C17—C180.7 (3)
C3—C4—C5—C60.4 (4)C20—C16—C17—C18179.40 (18)
C4—C5—C6—C71.0 (4)C16—C17—C18—N21.2 (3)
C5—C6—C7—C20.8 (4)C16—C17—C18—C19178.71 (19)
C3—C2—C7—C60.1 (4)N1—N2—C18—C17176.86 (18)
C1—C2—C7—C6176.1 (2)C15—N2—C18—C170.8 (3)
N1—C1—C8—C151.8 (2)N1—N2—C18—C193.3 (3)
C2—C1—C8—C15173.7 (2)C15—N2—C18—C19179.10 (19)
N1—C1—C8—C9179.3 (2)C17—C18—C19—F1115.6 (2)
C2—C1—C8—C93.9 (4)N2—C18—C19—F164.6 (3)
C15—C8—C9—C1459.2 (3)C17—C18—C19—F2124.1 (2)
C1—C8—C9—C14118.0 (3)N2—C18—C19—F255.8 (3)
C15—C8—C9—C10117.6 (2)C17—C18—C19—F32.5 (3)
C1—C8—C9—C1065.3 (3)N2—C18—C19—F3177.34 (19)
C14—C9—C10—C110.7 (4)N3—C16—C20—C2515.9 (3)
C8—C9—C10—C11177.6 (2)C17—C16—C20—C25164.1 (2)
C14—C9—C10—Cl1179.21 (19)N3—C16—C20—C21163.79 (19)
C8—C9—C10—Cl12.3 (3)C17—C16—C20—C2116.3 (3)
C9—C10—C11—C120.2 (4)C25—C20—C21—C221.1 (3)
Cl1—C10—C11—C12179.8 (2)C16—C20—C21—C22179.3 (2)
C10—C11—C12—C130.9 (4)C20—C21—C22—C230.3 (4)
C10—C11—C12—Cl2179.9 (2)C21—C22—C23—F4178.4 (2)
C11—C12—C13—C141.3 (5)C21—C22—C23—C241.4 (4)
Cl2—C12—C13—C14179.7 (2)F4—C23—C24—C25178.7 (2)
C12—C13—C14—C90.7 (5)C22—C23—C24—C251.1 (4)
C10—C9—C14—C130.3 (4)C23—C24—C25—C200.3 (4)
C8—C9—C14—C13177.3 (3)C21—C20—C25—C241.4 (3)
C16—N3—C15—C8179.1 (2)C16—C20—C25—C24179.0 (2)
C16—N3—C15—N20.6 (3)

Experimental details

Crystal data
Chemical formulaC25H13Cl2F4N3
Mr502.28
Crystal system, space groupMonoclinic, P21/c
Temperature (K)293
a, b, c (Å)9.0826 (18), 9.0606 (18), 27.259 (6)
β (°) 99.46 (3)
V3)2212.7 (8)
Z4
Radiation typeMo Kα
µ (mm1)0.35
Crystal size (mm)0.24 × 0.22 × 0.20
Data collection
DiffractometerRigaku Saturn
diffractometer
Absorption correctionMulti-scan
(CrystalClear; Rigaku/MSC, 2005)
Tmin, Tmax0.922, 0.934
No. of measured, independent and
observed [I > 2σ(I)] reflections
15847, 3895, 3056
Rint0.041
(sin θ/λ)max1)0.595
Refinement
R[F2 > 2σ(F2)], wR(F2), S 0.051, 0.143, 1.09
No. of reflections3895
No. of parameters308
H-atom treatmentH-atom parameters constrained
Δρmax, Δρmin (e Å3)0.37, 0.46

Computer programs: RAPID-AUTO (Rigaku, 1998), CrystalClear (Rigaku/MSC, 2005), SHELXS97 (Sheldrick, 2008), SHELXL97 (Sheldrick, 2008), SHELXTL (Sheldrick, 2008).

 

Acknowledgements

The authors thank the State Key Laboratory of Elemento-organic Chemistry, Nankai University, for the X-ray data collection.

References

First citationBui, T. T., Dahaoui, S., Lecomte, C., Desiraju, G. R. & Espinosa, E. (2009). Angew. Chem. Int. Ed. 48, 3838–3841.  Web of Science CSD CrossRef CAS Google Scholar
First citationDalinger, I. L., Vatsadse, I. A., Shevelev, S. A. & Ivachtchenko, A. V. (2005). ACS Comb. Sci. 7, 236–245.  CAS Google Scholar
First citationDennis, R. C., Kathyn, E. C. & John, A. K. (2004). Bioorg. Med. Chem. Lett. 14, 5681–5684.  Web of Science PubMed Google Scholar
First citationFraley, M. E., Rubino, R. S., Hoffman, W. F., Hambaugh, S. R., Arrington, K. L., Hungate, R. W., Bilodeau, M. T., Tebben, A. J., Rutledge, R. Z., Kendall, R. L., McFall, R. C., Huckle, W. R., Coll, K. E. & Thomas, K. A. (2012). Bioorg. Med. Chem. Lett. 12, 3537–3541.  Web of Science CrossRef Google Scholar
First citationFrizzo, C. P., Campos, P. T., Marzari, M. R. B., Machado, P. & Martins, M. A. P. (2008). Acta Cryst. E64, o212.  Web of Science CSD CrossRef IUCr Journals Google Scholar
First citationLiu, J., Cai, Z.-Q., Wang, Y., Jiang, M.-J. & Xu, L.-F. (2012). Acta Cryst. E68, o1515.  CSD CrossRef IUCr Journals Google Scholar
First citationRigaku (1998). RAPID-AUTO. Rigaku Corporation, Tokyo, Japan.  Google Scholar
First citationRigaku/MSC (2005). CrystalClear. Rigaku/MSC, The Woodlands, Texas, USA.  Google Scholar
First citationSheldrick, G. M. (2008). Acta Cryst. A64, 112–122.  Web of Science CrossRef CAS IUCr Journals 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 logoCRYSTALLOGRAPHIC
COMMUNICATIONS
ISSN: 2056-9890
Follow Acta Cryst. E
Sign up for e-alerts
Follow Acta Cryst. on Twitter
Follow us on facebook
Sign up for RSS feeds