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

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ISSN: 2414-3146

4-Benzyl-1,2,4-tri­aza­spiro­[4.5]dec-1-ene-3-thione

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aChemistry and Environmental Division, Manchester Metropolitan University, Manchester M1 5GD, England, bChemistry Department, Faculty of Science, Minia University, 61519 El-Minia, Egypt, cDepartment of Physics, Faculty of Sciences, Erciyes University, 38039 Kayseri, Turkey, dDepartment of Chemistry, Keene State College, 229 Main Street, Keene, NH 03435-2001, USA, and eKirkuk University, College of Science, Department of Chemistry, Kirkuk, Iraq
*Correspondence e-mail: shaabankamel@yahoo.com

Edited by J. Simpson, University of Otago, New Zealand (Received 7 December 2016; accepted 9 December 2016; online 16 December 2016)

In the title compound, C14H17N3S, the cyclo­hexane ring adopts a chair conformation. The dihedral angle between the triazole and phenyl ring is 77.2 (3)°. In the crystal structure, C—H⋯S hydrogen link mol­ecules into C(7) chains along the b-axis direction. The crystal studied was refined as as an inversion twin.

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

Structure description

Heterocyclic 1,2,4-triazoline-5-thione derivatives exhibit a variety of biological properties including analgesic (Mekuskiene et al., 1998[Mekuskiene, G., Gaidelis, P. & Vainilavicius, P. (1998). Pharmazie, 53, 94-96.]), anti-inflammatory (Sahin et al., 2001[Sahin, G., Palaska, E., Kelicen, P. C., Demirdamar, R. & Altinok, G. (2001). Arzneim.-Forsch. 51, 478-484.]), bacteriostatic (Eweiss et al., 1986[Eweiss, N. F., Bahajaj, A. A. & Elsherbini, E. A. (1986). J. Heterocycl. Chem. 23, 1451-1458.]) and anti­mitotic (Wujec et al., 2004[Wujec, M., Pitucha, M., Dobosz, M., Kosikowska, U. & Malm, A. (2004). Acta Pharm. 54, 251-260.]) activities. As part of our studies in this area, we determined the crystal structure of the title tri­aza­thione compound (Fig. 1[link]).

[Figure 1]
Figure 1
The title mol­ecule, shown with 50% probability displacement ellipsoids.

The cyclo­hexane ring adopts a chair conformation with puckering parameters QT = 0.540 (5) Å, θ = 176.6 (5) ° and φ = 350 (9)°. The triazole ring is essentially planar (r.m.s. deviation = 0.004 Å) and makes a dihedral angle of 77.2 (3)° with the phenyl ring. The values of all geometric parameters are within normal ranges and comparable with the values for the related compound 4-allyl-1,2,4-tri­aza­spiro­[4.5]dec-1-ene-3-thione (Hassan et al., 2016[Hassan, A. A., Mohamed, S. K., Mohamed, N. K., El-Shaieb, K. M. A., Abdel-Aziz, A. T., Mague, J. T. & Akkurt, M. (2016). Arkivoc, iii, 287-303.]).

In the crystal, C10—H10⋯S1 hydrogen bonds link the mol­ecules in a zigzag fashion into C(7) chains along the b-axis direction (Table 1[link] and Fig. 2[link]).

Table 1
Hydrogen-bond geometry (Å, °)

D—H⋯A D—H H⋯A DA D—H⋯A
C10—H10⋯S1i 0.93 2.87 3.779 (6) 166
Symmetry code: (i) [-x+1, y+{\script{1\over 2}}, -z+{\script{1\over 2}}].
[Figure 2]
Figure 2
Packing of the title mol­ecule, viewed along the a axis. Hydrogen bonds are drawn as dashed lines.

Synthesis and crystallization

The title compound was prepared according to our previously reported method (Hassan et al., 2016[Hassan, A. A., Mohamed, S. K., Mohamed, N. K., El-Shaieb, K. M. A., Abdel-Aziz, A. T., Mague, J. T. & Akkurt, M. (2016). Arkivoc, iii, 287-303.]). Colourless crystals suitable for X-ray diffraction were obtained from ethanol in 80% yield, using the slow evaporation method. M.p. 435–436 K.

Refinement

Crystal data, data collection and structure refinement details are summarized in Table 2[link]. The crystal studied was refined as as an inversion twin.

Table 2
Experimental details

Crystal data
Chemical formula C14H17N3S
Mr 259.36
Crystal system, space group Orthorhombic, P212121
Temperature (K) 173
a, b, c (Å) 7.3730 (6), 10.7698 (7), 17.1056 (12)
V3) 1358.28 (17)
Z 4
Radiation type Cu Kα
μ (mm−1) 1.99
Crystal size (mm) 0.34 × 0.32 × 0.22
 
Data collection
Diffractometer Rigaku Oxford Diffraction
Absorption correction Multi-scan (CrysAlis PRO; Agilent, 2014[Agilent (2014). CrysAlis PRO. Agilent Technologies Ltd, Yarnton, England.])
Tmin, Tmax 0.531, 1.000
No. of measured, independent and observed [I > 2σ(I)] reflections 8805, 2607, 1974
Rint 0.071
(sin θ/λ)max−1) 0.616
 
Refinement
R[F2 > 2σ(F2)], wR(F2), S 0.056, 0.138, 1.02
No. of reflections 2607
No. of parameters 164
H-atom treatment H-atom parameters constrained
Δρmax, Δρmin (e Å−3) 0.29, −0.28
Absolute structure Flack (1983[Flack, H. D. (1983). Acta Cryst. A39, 876-881.]), 1097 Friedel pairs; refined as an inversion twin
Absolute structure parameter 0.32 (4)
Computer programs: CrysAlis PRO (Agilent, 2014[Agilent (2014). CrysAlis PRO. Agilent Technologies Ltd, Yarnton, England.]), SHELXT (Sheldrick, 2015a[Sheldrick, G. M. (2015a). Acta Cryst. A71, 3-8.]), SHELXL (Sheldrick, 2015b[Sheldrick, G. M. (2015b). Acta Cryst. C71, 3-8.]), PLATON (Spek, 2009[Spek, A. L. (2009). Acta Cryst. D65, 148-155.]) and WinGX (Farrugia, 2012[Farrugia, L. J. (2012). J. Appl. Cryst. 45, 849-854.]).

Structural data


Computing details top

Data collection: CrysAlis PRO (Agilent, 2014); cell refinement: CrysAlis PRO (Agilent, 2014); data reduction: CrysAlis PRO (Agilent, 2014); program(s) used to solve structure: SHELXT (Sheldrick, 2015a); program(s) used to refine structure: SHELXL (Sheldrick, 2015b); molecular graphics: PLATON (Spek, 2009); software used to prepare material for publication: WinGX (Farrugia, 2012).

4-Benzyl-1,2,4-triazaspiro[4.5]dec-1-ene-3-thione top
Crystal data top
C14H17N3SDx = 1.268 Mg m3
Mr = 259.36Cu Kα radiation, λ = 1.54184 Å
Orthorhombic, P212121Cell parameters from 1528 reflections
a = 7.3730 (6) Åθ = 4.8–68.8°
b = 10.7698 (7) ŵ = 1.99 mm1
c = 17.1056 (12) ÅT = 173 K
V = 1358.28 (17) Å3Irregular, colourless
Z = 40.34 × 0.32 × 0.22 mm
F(000) = 552
Data collection top
Rigaku Oxford Diffraction
diffractometer
2607 independent reflections
Radiation source: Enhance (Cu) X-ray Source1974 reflections with I > 2σ(I)
Graphite monochromatorRint = 0.071
Detector resolution: 16.0416 pixels mm-1θmax = 71.7°, θmin = 4.9°
ω scansh = 98
Absorption correction: multi-scan
(CrysAlis PRO; Agilent, 2014)
k = 1113
Tmin = 0.531, Tmax = 1.000l = 2020
8805 measured reflections
Refinement top
Refinement on F2Hydrogen site location: inferred from neighbouring sites
Least-squares matrix: fullH-atom parameters constrained
R[F2 > 2σ(F2)] = 0.056 w = 1/[σ2(Fo2) + (0.062P)2]
where P = (Fo2 + 2Fc2)/3
wR(F2) = 0.138(Δ/σ)max < 0.001
S = 1.02Δρmax = 0.29 e Å3
2607 reflectionsΔρmin = 0.28 e Å3
164 parametersAbsolute structure: Flack (1983), 1097 Friedel pairs; refined as an inversion twin
0 restraintsAbsolute structure parameter: 0.32 (4)
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. Refined as a two-component inversion twin

Fractional atomic coordinates and isotropic or equivalent isotropic displacement parameters (Å2) top
xyzUiso*/Ueq
C10.5544 (7)0.2039 (4)0.4292 (2)0.0379 (10)
C20.5495 (7)0.4171 (4)0.4180 (2)0.0341 (9)
C30.7193 (7)0.4963 (4)0.4071 (3)0.0384 (11)
H3A0.8233180.4524060.4280910.046*
H3B0.7401280.5093650.3516640.046*
C40.7017 (8)0.6217 (5)0.4477 (3)0.0433 (13)
H4A0.6996210.6092610.5038130.052*
H4B0.8066470.6723450.4352080.052*
C50.5310 (7)0.6895 (4)0.4229 (3)0.0446 (12)
H5A0.5213080.7666870.4518530.053*
H5B0.5387920.7098060.3677350.053*
C60.3633 (8)0.6119 (5)0.4372 (3)0.0471 (13)
H6A0.2578300.6562080.4180290.056*
H6B0.3481780.5997560.4930360.056*
C70.3741 (7)0.4850 (4)0.3969 (3)0.0405 (12)
H7A0.2710870.4348230.4126230.049*
H7B0.3682570.4962540.3407410.049*
C80.5758 (7)0.2799 (4)0.2940 (2)0.0386 (11)
H8A0.4939860.3378920.2686860.046*
H8B0.5359830.1966630.2808330.046*
C90.7632 (7)0.2991 (4)0.2621 (3)0.0356 (11)
C100.7936 (8)0.3828 (4)0.2015 (3)0.0418 (12)
H100.6967700.4272470.1808330.050*
C110.9654 (9)0.4006 (5)0.1718 (3)0.0486 (14)
H110.9834860.4565650.1311700.058*
C121.1088 (8)0.3366 (5)0.2017 (3)0.0525 (15)
H121.2248660.3493810.1820150.063*
C131.0808 (7)0.2528 (5)0.2612 (3)0.0588 (15)
H131.1785180.2083160.2812100.071*
C140.9102 (7)0.2340 (5)0.2915 (3)0.0455 (12)
H140.8935030.1772660.3318460.055*
N10.5623 (6)0.2963 (3)0.37830 (19)0.0346 (8)
N20.5381 (6)0.3770 (3)0.5009 (2)0.0423 (10)
N30.5407 (6)0.2617 (4)0.5075 (2)0.0455 (10)
S10.5585 (2)0.05329 (10)0.41790 (8)0.0495 (4)
Atomic displacement parameters (Å2) top
U11U22U33U12U13U23
C10.036 (2)0.039 (2)0.039 (2)0.000 (2)0.001 (3)0.0023 (19)
C20.040 (3)0.034 (2)0.028 (2)0.0020 (19)0.006 (2)0.0013 (16)
C30.040 (3)0.039 (2)0.036 (3)0.000 (2)0.001 (2)0.002 (2)
C40.057 (4)0.034 (3)0.039 (3)0.008 (2)0.001 (2)0.000 (2)
C50.062 (3)0.026 (2)0.045 (3)0.000 (2)0.003 (3)0.003 (2)
C60.053 (3)0.037 (3)0.051 (3)0.011 (2)0.010 (3)0.001 (2)
C70.043 (3)0.038 (2)0.041 (3)0.001 (2)0.003 (2)0.001 (2)
C80.039 (3)0.043 (3)0.033 (2)0.002 (2)0.007 (2)0.0043 (19)
C90.041 (3)0.034 (2)0.032 (2)0.001 (2)0.000 (2)0.0073 (19)
C100.056 (3)0.037 (3)0.033 (3)0.006 (2)0.007 (2)0.000 (2)
C110.067 (4)0.048 (3)0.031 (2)0.013 (3)0.005 (3)0.001 (2)
C120.046 (4)0.062 (4)0.050 (3)0.007 (3)0.014 (3)0.003 (3)
C130.036 (3)0.062 (3)0.079 (4)0.010 (3)0.000 (3)0.013 (3)
C140.043 (3)0.047 (3)0.046 (3)0.005 (2)0.004 (2)0.011 (2)
N10.041 (2)0.0309 (18)0.0317 (18)0.0008 (19)0.0009 (19)0.0007 (14)
N20.058 (3)0.037 (2)0.0324 (19)0.001 (2)0.005 (2)0.0029 (17)
N30.060 (3)0.041 (2)0.036 (2)0.002 (2)0.006 (2)0.0008 (17)
S10.0572 (8)0.0316 (6)0.0597 (8)0.0043 (6)0.0020 (8)0.0025 (6)
Geometric parameters (Å, º) top
C1—N11.324 (5)C7—H7A0.9700
C1—N31.481 (5)C7—H7B0.9700
C1—S11.634 (4)C8—N11.456 (5)
C2—N11.470 (5)C8—C91.500 (7)
C2—N21.485 (5)C8—H8A0.9700
C2—C31.527 (7)C8—H8B0.9700
C2—C71.528 (7)C9—C141.386 (7)
C3—C41.524 (6)C9—C101.391 (6)
C3—H3A0.9700C10—C111.378 (8)
C3—H3B0.9700C10—H100.9300
C4—C51.516 (7)C11—C121.362 (8)
C4—H4A0.9700C11—H110.9300
C4—H4B0.9700C12—C131.376 (7)
C5—C61.512 (7)C12—H120.9300
C5—H5A0.9700C13—C141.375 (7)
C5—H5B0.9700C13—H130.9300
C6—C71.533 (6)C14—H140.9300
C6—H6A0.9700N2—N31.247 (5)
C6—H6B0.9700
N1—C1—N3106.4 (4)C2—C7—H7A109.4
N1—C1—S1131.9 (3)C6—C7—H7A109.4
N3—C1—S1121.7 (3)C2—C7—H7B109.4
N1—C2—N2100.8 (3)C6—C7—H7B109.4
N1—C2—C3112.6 (4)H7A—C7—H7B108.0
N2—C2—C3109.0 (4)N1—C8—C9113.9 (4)
N1—C2—C7111.6 (4)N1—C8—H8A108.8
N2—C2—C7108.4 (4)C9—C8—H8A108.8
C3—C2—C7113.4 (3)N1—C8—H8B108.8
C4—C3—C2111.7 (4)C9—C8—H8B108.8
C4—C3—H3A109.3H8A—C8—H8B107.7
C2—C3—H3A109.3C14—C9—C10118.1 (5)
C4—C3—H3B109.3C14—C9—C8121.3 (4)
C2—C3—H3B109.3C10—C9—C8120.6 (4)
H3A—C3—H3B107.9C11—C10—C9120.9 (5)
C5—C4—C3111.7 (4)C11—C10—H10119.6
C5—C4—H4A109.3C9—C10—H10119.6
C3—C4—H4A109.3C12—C11—C10120.3 (5)
C5—C4—H4B109.3C12—C11—H11119.9
C3—C4—H4B109.3C10—C11—H11119.9
H4A—C4—H4B107.9C11—C12—C13119.6 (5)
C6—C5—C4111.5 (4)C11—C12—H12120.2
C6—C5—H5A109.3C13—C12—H12120.2
C4—C5—H5A109.3C14—C13—C12120.8 (5)
C6—C5—H5B109.3C14—C13—H13119.6
C4—C5—H5B109.3C12—C13—H13119.6
H5A—C5—H5B108.0C13—C14—C9120.3 (5)
C5—C6—C7112.2 (4)C13—C14—H14119.8
C5—C6—H6A109.2C9—C14—H14119.8
C7—C6—H6A109.2C1—N1—C8124.3 (4)
C5—C6—H6B109.2C1—N1—C2111.0 (3)
C7—C6—H6B109.2C8—N1—C2124.7 (3)
H6A—C6—H6B107.9N3—N2—C2112.1 (3)
C2—C7—C6111.4 (4)N2—N3—C1109.7 (4)
N1—C2—C3—C4179.1 (4)C8—C9—C14—C13179.8 (5)
N2—C2—C3—C469.9 (5)N3—C1—N1—C8179.6 (4)
C7—C2—C3—C451.1 (5)S1—C1—N1—C80.7 (9)
C2—C3—C4—C553.4 (5)N3—C1—N1—C21.6 (6)
C3—C4—C5—C656.1 (5)S1—C1—N1—C2178.8 (4)
C4—C5—C6—C755.7 (6)C9—C8—N1—C1101.8 (6)
N1—C2—C7—C6178.9 (4)C9—C8—N1—C280.4 (6)
N2—C2—C7—C671.0 (5)N2—C2—N1—C11.5 (5)
C3—C2—C7—C650.3 (5)C3—C2—N1—C1117.6 (5)
C5—C6—C7—C252.4 (6)C7—C2—N1—C1113.4 (5)
N1—C8—C9—C1454.4 (6)N2—C2—N1—C8179.6 (4)
N1—C8—C9—C10126.1 (4)C3—C2—N1—C864.4 (6)
C14—C9—C10—C110.2 (7)C7—C2—N1—C864.6 (6)
C8—C9—C10—C11179.8 (4)N1—C2—N2—N30.9 (5)
C9—C10—C11—C120.3 (7)C3—C2—N2—N3119.6 (5)
C10—C11—C12—C130.8 (8)C7—C2—N2—N3116.5 (5)
C11—C12—C13—C140.8 (9)C2—N2—N3—C10.0 (6)
C12—C13—C14—C90.3 (9)N1—C1—N3—N21.0 (6)
C10—C9—C14—C130.2 (7)S1—C1—N3—N2179.3 (4)
Hydrogen-bond geometry (Å, º) top
D—H···AD—HH···AD···AD—H···A
C10—H10···S1i0.932.873.779 (6)166
Symmetry code: (i) x+1, y+1/2, z+1/2.
 

Acknowledgements

JPJ would like to acknowledge the NSF–MRI program (grant No. CHE-1039027) for funds to purchase the X ray diffractometer.

References

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