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

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ISSN: 2056-9890

(Z)-2-Sulfanyl­­idene-5-(thio­phen-2-yl­methyl­­idene)imidazolidin-4-one

aChemistry Department, Faculty of Science, King Abdulaziz University, PO Box 80203 Jeddah, Saudi Arabia, bCenter of Excellence for Advanced Materials Research, King Abdulaziz University, PO Box 80203 Jeddah, Saudi Arabia, and cDepartment of Chemistry, University of Malaya, 50603 Kuala Lumpur, Malaysia
*Correspondence e-mail: seikweng@um.edu.my

(Received 13 August 2011; accepted 15 August 2011; online 27 August 2011)

The mol­ecule of the title compound, C8H6N2OS2, has a V shape with two five-membered rings attached to a methyl­ene C atom. All non-H atoms are approximately coplanar (r.m.s. deviation = 0.096 Å). In the crystal, mol­ecules are linked by N—H⋯O hydrogen bonds into layers. The thio­phene ring is disordered over two positions; the major orientation has an occupancy of 0.683 (3). is there an intramolecular N---H...S bond?

Related literature

For two 5-aryl-2-thioxoimidazolin-4-ones, see: Chowdhry et al. (2000[Chowdhry, M. M., Mingos, D. M. P., White, A. J. P. & Williams, D. W. (2000). J. Chem. Soc. Perkin Trans. 1, pp. 3495-3504.]); Książek et al. (2009[Książek, W., Kieć-Kononowicz, K. & Karolak-Wojciechowska, J. (2009). J. Mol. Struct. 921, 109-113.]).

[Scheme 1]

Experimental

Crystal data
  • C8H6N2OS2

  • Mr = 210.27

  • Triclinic, [P \overline 1]

  • a = 6.1022 (6) Å

  • b = 7.0806 (8) Å

  • c = 11.0425 (13) Å

  • α = 72.582 (11)°

  • β = 76.116 (10)°

  • γ = 75.640 (9)°

  • V = 433.87 (8) Å3

  • Z = 2

  • Cu Kα radiation

  • μ = 5.22 mm−1

  • T = 100 K

  • 0.25 × 0.20 × 0.02 mm

Data collection
  • Agilent SuperNova Dual diffractometer with an Atlas detector

  • Absorption correction: multi-scan (CrysAlis PRO; Agilent, 2010[Agilent (2010). CrysAlis PRO. Agilent Technologies, Yarnton, Oxfordshire, England.]) Tmin = 0.356, Tmax = 0.903

  • 2599 measured reflections

  • 1677 independent reflections

  • 1519 reflections with I > 2σ(I)

  • Rint = 0.027

Refinement
  • R[F2 > 2σ(F2)] = 0.043

  • wR(F2) = 0.122

  • S = 1.04

  • 1677 reflections

  • 134 parameters

  • 6 restraints

  • H-atom parameters constrained

  • Δρmax = 0.33 e Å−3

  • Δρmin = −0.44 e Å−3

Table 1
Hydrogen-bond geometry (Å, °)

D—H⋯A D—H H⋯A DA D—H⋯A
N2—H2⋯O1i 0.88 2.20 2.873 (2) 133
Symmetry code: (i) x+1, y, z.

Data collection: CrysAlis PRO (Agilent, 2010[Agilent (2010). CrysAlis PRO. Agilent Technologies, Yarnton, Oxfordshire, England.]); cell refinement: CrysAlis PRO; data reduction: CrysAlis PRO; 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: X-SEED (Barbour, 2001[Barbour, L. J. (2001). J. Supramol. Chem. 1, 189-191.]); software used to prepare material for publication: publCIF (Westrip, 2010[Westrip, S. P. (2010). J. Appl. Cryst. 43, 920-925.]).

Supporting information


Comment top

The crystal structures of only a small number of 5-aryl-2-thioxoimidazolidin-4-ones have been reported, with that of the phenyl homolog been described only recently. The bond dimensions of the parent compound are used to explain the nature of the products of its cycloaddition reaction (Książek et al., 2009). The 2-pyridyl derivative is also a flat molecule (Chowdhry et al., 2000) The thienyl analog (Scheme I) is similarly planar (r.m.s. deviation 0.096 Å). The molecule has a somewhat butterfly shape with the two five-membered rings attached to the methylene carbon (Fig. 1). The –NH– unit at the 4-position (of one ring) points towards the S atom in the 2-position (of the other ring); however, the interaction is too weak to lock the molecule so that the thienyl ring is able to adopt two orientations. Two molecules are linked by an N–H···O hydrogen bond across a center-of-inversion to form a dimer.

Related literature top

For two 5-aryl-2-thioxoimidazolin-4-ones, see: Chowdhry et al. (2000); Książek et al. (2009).

Experimental top

Thiophene-2-carboxaldehyde (1.10 g, 10 mmol) in ethanol (20 ml) was added to a solution of the 2-thiohydantoin (1.16 g,10 mmol) in 20% ethanolic potassium hydroxide (20 ml). The mixture was stirred for 6 h. The mixture was then poured into water (200 ml). The precipitate that separated when this was acidified with 10% hydrochloric acid was collected and recrystallized from ethanol.

Refinement top

H-atoms were placed in calculated positions [C—H 0.95 0.98 and N—H 0.88 Å; Uiso(H) 1.2Ueq(C,N)] and were included in the refinement in the riding model approximation.

The thienyl ring is disordered over two positions; pairs of bond distances were restrained to within 0.01 Å of each other, and the displacement parameters of the overlaying atoms were set to be equal. The major disorder component refined to 68.3 (3)%.

The intensity measurements are complete to 95%; however, they are 100% complete at a 2θ limit of 135 °.

Computing details top

Data collection: CrysAlis PRO (Agilent, 2010); cell refinement: CrysAlis PRO (Agilent, 2010); data reduction: CrysAlis PRO (Agilent, 2010); program(s) used to solve structure: SHELXS97 (Sheldrick, 2008); program(s) used to refine structure: SHELXL97 (Sheldrick, 2008); molecular graphics: X-SEED (Barbour, 2001); software used to prepare material for publication: publCIF (Westrip, 2010).

Figures top
[Figure 1] Fig. 1. Ansiotropic displacement ellipsoid plot (Barbour, 2001) of C8H6N2OS2 at the 70% probability level; hydrogen atoms are drawn as spheres of arbitrary radius. The disorder in the thienyl ring is not shown.
(Z)-2-Sulfanylidene-5-(thiophen-2-ylmethylidene)imidazolidin-4-one top
Crystal data top
C8H6N2OS2Z = 2
Mr = 210.27F(000) = 216
Triclinic, P1Dx = 1.610 Mg m3
Hall symbol: -P 1Cu Kα radiation, λ = 1.54184 Å
a = 6.1022 (6) ÅCell parameters from 1386 reflections
b = 7.0806 (8) Åθ = 4.3–73.9°
c = 11.0425 (13) ŵ = 5.22 mm1
α = 72.582 (11)°T = 100 K
β = 76.116 (10)°Plate, yellow
γ = 75.640 (9)°0.25 × 0.20 × 0.02 mm
V = 433.87 (8) Å3
Data collection top
Agilent SuperNova Dual
diffractometer with an Atlas detector
1677 independent reflections
Radiation source: SuperNova (Cu) X-ray Source1519 reflections with I > 2σ(I)
Mirror monochromatorRint = 0.027
Detector resolution: 10.4041 pixels mm-1θmax = 74.1°, θmin = 4.3°
ω scansh = 47
Absorption correction: multi-scan
(CrysAlis PRO; Agilent, 2010)
k = 88
Tmin = 0.356, Tmax = 0.903l = 1113
2599 measured reflections
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)] = 0.043Hydrogen site location: inferred from neighbouring sites
wR(F2) = 0.122H-atom parameters constrained
S = 1.04 w = 1/[σ2(Fo2) + (0.0832P)2 + 0.1141P]
where P = (Fo2 + 2Fc2)/3
1677 reflections(Δ/σ)max = 0.001
134 parametersΔρmax = 0.33 e Å3
6 restraintsΔρmin = 0.44 e Å3
Crystal data top
C8H6N2OS2γ = 75.640 (9)°
Mr = 210.27V = 433.87 (8) Å3
Triclinic, P1Z = 2
a = 6.1022 (6) ÅCu Kα radiation
b = 7.0806 (8) ŵ = 5.22 mm1
c = 11.0425 (13) ÅT = 100 K
α = 72.582 (11)°0.25 × 0.20 × 0.02 mm
β = 76.116 (10)°
Data collection top
Agilent SuperNova Dual
diffractometer with an Atlas detector
1677 independent reflections
Absorption correction: multi-scan
(CrysAlis PRO; Agilent, 2010)
1519 reflections with I > 2σ(I)
Tmin = 0.356, Tmax = 0.903Rint = 0.027
2599 measured reflections
Refinement top
R[F2 > 2σ(F2)] = 0.0436 restraints
wR(F2) = 0.122H-atom parameters constrained
S = 1.04Δρmax = 0.33 e Å3
1677 reflectionsΔρmin = 0.44 e Å3
134 parameters
Fractional atomic coordinates and isotropic or equivalent isotropic displacement parameters (Å2) top
xyzUiso*/UeqOcc. (<1)
S10.82425 (8)0.32671 (8)0.07136 (5)0.0212 (2)
S20.7731 (2)0.1352 (3)0.61560 (16)0.0177 (3)0.683 (3)
O10.0398 (3)0.3931 (2)0.34150 (16)0.0214 (4)
N10.3814 (3)0.3582 (3)0.19518 (18)0.0165 (4)
H10.32430.38310.12470.020*
N20.6346 (3)0.2730 (3)0.32364 (17)0.0155 (4)
H20.76650.23400.35130.019*
C10.6123 (4)0.3176 (3)0.1982 (2)0.0161 (4)
C20.2501 (4)0.3552 (3)0.3155 (2)0.0165 (5)
C30.4173 (3)0.2981 (3)0.4032 (2)0.0153 (4)
C40.3529 (4)0.2791 (3)0.5309 (2)0.0172 (5)
H40.19120.30660.55920.021*
C50.484 (2)0.225 (8)0.6318 (12)0.017 (2)0.683 (3)
C60.388 (2)0.234 (2)0.7571 (9)0.0201 (7)0.683 (3)
H60.22880.27660.78560.024*0.683 (3)
C70.5563 (7)0.1717 (7)0.8394 (5)0.0218 (9)0.683 (3)
H70.52280.17140.92800.026*0.683 (3)
C80.7709 (9)0.1127 (9)0.7737 (4)0.0227 (12)0.683 (3)
H80.90450.06450.81220.027*0.683 (3)
S2'0.3819 (11)0.2103 (10)0.7847 (4)0.0201 (7)0.317
C5'0.494 (4)0.210 (17)0.628 (2)0.017 (2)0.317
C6'0.731 (3)0.159 (3)0.6117 (17)0.0177 (3)0.317
H6'0.82770.15920.53040.021*0.317 (3)
C7'0.816 (3)0.106 (2)0.7307 (10)0.0227 (12)0.317
H7'0.97310.06090.73790.027*0.317 (3)
C8'0.6415 (17)0.1274 (17)0.8312 (14)0.0218 (9)0.317
H8'0.66280.09940.91770.026*0.317 (3)
Atomic displacement parameters (Å2) top
U11U22U33U12U13U23
S10.0143 (3)0.0310 (3)0.0138 (3)0.0020 (2)0.0009 (2)0.0024 (2)
S20.0127 (7)0.0198 (7)0.0184 (5)0.0001 (5)0.0058 (5)0.0018 (4)
O10.0122 (7)0.0315 (9)0.0211 (9)0.0048 (6)0.0035 (6)0.0068 (7)
N10.0139 (8)0.0223 (9)0.0131 (9)0.0046 (7)0.0041 (7)0.0020 (7)
N20.0108 (8)0.0213 (9)0.0129 (9)0.0026 (6)0.0037 (7)0.0013 (7)
C10.0149 (10)0.0173 (9)0.0154 (11)0.0047 (7)0.0035 (8)0.0012 (8)
C20.0159 (10)0.0186 (10)0.0157 (11)0.0062 (8)0.0021 (8)0.0035 (8)
C30.0137 (10)0.0162 (9)0.0153 (11)0.0041 (7)0.0034 (8)0.0014 (8)
C40.0155 (10)0.0182 (10)0.0180 (11)0.0057 (8)0.0026 (8)0.0034 (8)
C50.0229 (15)0.014 (7)0.0159 (13)0.007 (2)0.0053 (11)0.0011 (14)
C60.0226 (7)0.0262 (17)0.011 (2)0.0063 (8)0.0009 (15)0.0042 (16)
C70.034 (3)0.020 (2)0.0125 (14)0.0076 (19)0.004 (2)0.0041 (14)
C80.031 (4)0.0192 (13)0.018 (3)0.0072 (17)0.012 (3)0.003 (2)
S2'0.0226 (7)0.0262 (17)0.011 (2)0.0063 (8)0.0009 (15)0.0042 (16)
C5'0.0229 (15)0.014 (7)0.0159 (13)0.007 (2)0.0053 (11)0.0011 (14)
C6'0.0127 (7)0.0198 (7)0.0184 (5)0.0001 (5)0.0058 (5)0.0018 (4)
C7'0.031 (4)0.0192 (13)0.018 (3)0.0072 (17)0.012 (3)0.003 (2)
C8'0.034 (3)0.020 (2)0.0125 (14)0.0076 (19)0.004 (2)0.0041 (14)
Geometric parameters (Å, º) top
S1—C11.660 (2)C5—C61.380 (13)
S2—C51.706 (9)C6—C71.433 (13)
S2—C81.702 (5)C6—H60.9500
O1—C21.224 (3)C7—C81.368 (5)
N1—C11.373 (3)C7—H70.9500
N1—C21.374 (3)C8—H80.9500
N1—H10.8800S2'—C8'1.693 (9)
N2—C11.358 (3)S2'—C5'1.705 (17)
N2—C31.407 (3)C5'—C6'1.378 (16)
N2—H20.8800C6'—C7'1.438 (15)
C2—C31.476 (3)C6'—H6'0.9500
C3—C41.344 (3)C7'—C8'1.356 (9)
C4—C5'1.430 (8)C7'—H7'0.9500
C4—C51.431 (5)C8'—H8'0.9500
C4—H40.9500
C5—S2—C892.3 (3)C4—C5—S2125.2 (7)
C1—N1—C2111.81 (19)C5—C6—C7112.6 (10)
C1—N1—H1124.1C5—C6—H6123.7
C2—N1—H1124.1C7—C6—H6123.7
C1—N2—C3110.50 (17)C8—C7—C6111.1 (7)
C1—N2—H2124.8C8—C7—H7124.4
C3—N2—H2124.8C6—C7—H7124.4
N2—C1—N1107.33 (18)C7—C8—S2112.7 (5)
N2—C1—S1126.45 (16)C7—C8—H8123.6
N1—C1—S1126.20 (17)S2—C8—H8123.6
O1—C2—N1126.4 (2)C8'—S2'—C5'93.5 (8)
O1—C2—C3128.6 (2)C6'—C5'—C4128.4 (16)
N1—C2—C3104.99 (17)C6'—C5'—S2'109.6 (10)
C4—C3—N2132.2 (2)C4—C5'—S2'121.5 (14)
C4—C3—C2122.56 (19)C5'—C6'—C7'113.2 (14)
N2—C3—C2105.19 (18)C5'—C6'—H6'123.4
C3—C4—C5'128.4 (9)C7'—C6'—H6'123.4
C3—C4—C5131.6 (5)C8'—C7'—C6'111.3 (16)
C3—C4—H4114.2C8'—C7'—H7'124.4
C5'—C4—H4117.3C6'—C7'—H7'124.4
C5—C4—H4114.2C7'—C8'—S2'112.2 (13)
C6—C5—C4123.6 (9)C7'—C8'—H8'123.9
C6—C5—S2111.2 (6)S2'—C8'—H8'123.9
C3—N2—C1—N14.2 (2)O1—C2—C3—C40.3 (3)
C3—N2—C1—S1174.52 (16)N1—C2—C3—C4179.96 (19)
C2—N1—C1—N24.3 (2)O1—C2—C3—N2179.7 (2)
C2—N1—C1—S1174.39 (16)N1—C2—C3—N20.1 (2)
C1—N1—C2—O1177.1 (2)C6—C7—C8—S21.0 (8)
C1—N1—C2—C32.7 (2)C5—S2—C8—C70.0 (18)
C1—N2—C3—C4177.4 (2)C6'—C7'—C8'—S2'0.1 (18)
C1—N2—C3—C22.5 (2)
Hydrogen-bond geometry (Å, º) top
D—H···AD—HH···AD···AD—H···A
N2—H2···O1i0.882.202.873 (2)133
Symmetry code: (i) x+1, y, z.

Experimental details

Crystal data
Chemical formulaC8H6N2OS2
Mr210.27
Crystal system, space groupTriclinic, P1
Temperature (K)100
a, b, c (Å)6.1022 (6), 7.0806 (8), 11.0425 (13)
α, β, γ (°)72.582 (11), 76.116 (10), 75.640 (9)
V3)433.87 (8)
Z2
Radiation typeCu Kα
µ (mm1)5.22
Crystal size (mm)0.25 × 0.20 × 0.02
Data collection
DiffractometerAgilent SuperNova Dual
diffractometer with an Atlas detector
Absorption correctionMulti-scan
(CrysAlis PRO; Agilent, 2010)
Tmin, Tmax0.356, 0.903
No. of measured, independent and
observed [I > 2σ(I)] reflections
2599, 1677, 1519
Rint0.027
(sin θ/λ)max1)0.624
Refinement
R[F2 > 2σ(F2)], wR(F2), S 0.043, 0.122, 1.04
No. of reflections1677
No. of parameters134
No. of restraints6
H-atom treatmentH-atom parameters constrained
Δρmax, Δρmin (e Å3)0.33, 0.44

Computer programs: CrysAlis PRO (Agilent, 2010), SHELXS97 (Sheldrick, 2008), SHELXL97 (Sheldrick, 2008), X-SEED (Barbour, 2001), publCIF (Westrip, 2010).

Hydrogen-bond geometry (Å, º) top
D—H···AD—HH···AD···AD—H···A
N2—H2···O1i0.882.202.873 (2)133
Symmetry code: (i) x+1, y, z.
 

Acknowledgements

We thank King Abdulaziz University and the University of Malaya for supporting this study.

References

First citationAgilent (2010). CrysAlis PRO. Agilent Technologies, Yarnton, Oxfordshire, England.  Google Scholar
First citationBarbour, L. J. (2001). J. Supramol. Chem. 1, 189–191.  CrossRef CAS Google Scholar
First citationChowdhry, M. M., Mingos, D. M. P., White, A. J. P. & Williams, D. W. (2000). J. Chem. Soc. Perkin Trans. 1, pp. 3495–3504.  CrossRef Google Scholar
First citationKsiążek, W., Kieć-Kononowicz, K. & Karolak-Wojciechowska, J. (2009). J. Mol. Struct. 921, 109–113.  Google Scholar
First citationSheldrick, G. M. (2008). Acta Cryst. A64, 112–122.  Web of Science CrossRef CAS IUCr Journals Google Scholar
First citationWestrip, S. P. (2010). J. Appl. Cryst. 43, 920–925.  Web of Science CrossRef CAS IUCr Journals Google Scholar

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