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ISSN: 2056-9890

Crystal structure and Hirshfeld surface analysis of 3-(2-chloro-6-fluoro­phen­yl)-1,5-bis­­(thio­phen-2-yl)pentane-1,5-dione

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aExcellence Center, Baku State University, Z. Khalilov Str. 33, AZ 1148, Baku, Azerbaijan, bDepartment of Physics, Faculty of Sciences, Erciyes University, 38039 Kayseri, Türkiye, cDepartment of Organic Chemistry, Baku State University, Z. Khalilov Str. 33, AZ 1148, Baku, Azerbaijan, and dDepartment of Chemistry, University of Gondar, PO Box 196, Gondar, Ethiopia
*Correspondence e-mail: [email protected]

Edited by S.-L. Zheng, Harvard University, USA (Received 25 September 2025; accepted 21 October 2025; online 31 October 2025)

In the title compound, C19H14ClFO2S2, the mol­ecular conformation is stabilized by intra­molecular C—H⋯F, C—H⋯Cl and C—H⋯O hydrogen bonds. In the crystal, the mol­ecules are linked into [010] chains by C—H⋯O hydrogen bonds, creating a C(6) motif and weak C—H⋯F and C—H⋯Cl inter­actions link these chains into sheets parallel to the (100) plane. The entire –C6H3FCl group is disordered over two positions in a 0.931 (4):0.069 (4) ratio. A Hirshfeld surface analysis indicates that the most important contributions to the crystal packing are from H⋯H (26.7%), C⋯H/H⋯C (17.2%), S⋯H/H⋯S (15.0%) and O⋯H/H⋯O (12.0%) inter­actions.

1. Chemical context

Substituted thio­phenes are important inter­mediates in organic synthesis, and are widely used in medicine, industrial chemistry, and materials science (Peng et al., 2024View full citation). Thio­phenes with anti-inflammatory, anti­bacterial, anti-cancer and other biological activities are widely used in the pharmaceutical industry, and a number of thio­phene-containing drugs have been approved by the Food and Drug Administration (FDA), such as Cefoxitin, Raloxifene and Suprofen (Schweizer et al., 2011View full citation). In addition, thio­phenes exhibit adequate electrical conductivity because of the presence of sulfur atoms. In particular, polythio­phenes have found applications in organic light-emitting diodes, organic semiconductors, field effect transistors, etc. (Turkoglu et al., 2019View full citation; Zhang et al., 2015View full citation). Functional properties of thio­phenes are strongly dependent on the inter­molecular inter­actions, such as hydrogen and chalcogen bonds (Gurbanov et al., 2020View full citation, 2022View full citation; Mahmudov et al., 2021View full citation, 2023View full citation). The cooperation of –Cl, –F and C=O groups with the thio­phen-2-yl synthon in thio­phenes can improve the functional properties of the corresponding organic materials (Gurbanov et al., 2023View full citation; Mahmoudi et al., 2017View full citation, 2018View full citation; Velásquez et al., 2019View full citation). Thus, in the current work we have synthesized a new thio­phene derivative, 3-(2-chloro-6-fluoro­phen­yl)-1,5-di(thio­phen-2-yl)pentane-1,5-dione, which provides multiple inter­molecular inter­actions.

2. Structural commentary

Intra­molecular C2—H2A⋯F1, C1—H1⋯Cl1 and C13—H13⋯O1 inter­actions (Fig. 1[link], Table 1[link]) maintain the mol­ecular conformation of the major disorder component of the title compound, resulting in C(6), C(5) and C(9) motifs (Bernstein et al., 1995View full citation), respectively. The major and minor occupancy benzene rings (C14–C19 and C14A–C19A) of the disordered 2-chloro-6-fluoro­phenyl group form an angle of 3.3 (5)° with one another. The angles between the planes of the two thio­phen-2-yl rings (S1/C4–C7 and S2/C10–C13) and the major occupancy ring (C14–C19) of the disordered 2-chloro-6-fluoro­phenyl group are 40.9 (1) and 51.6 (1)°, respectively. The dihedral angle between the two thio­phen-2-yl rings is 19.3 (1)°. The torsion angles C3—C2—C1—C14, C3—C2—C1—C8, C2—C1—C8—C9, C14—C1—C8—C9, C1—C8—C9—C10 and C8—C9—C10—C13 are 165.2 (2), −70.4 (2), 169.8 (2), −65.8 (3), −81.2 (2), and 0.4 (4)°, respectively. The sum of the angles about C1 is 333.6 (2)° for the major disorder component. All geometric parameters are normal and consistent with those of related compounds listed in the section Database survey.

[Scheme 1]

Table 1
Hydrogen-bond geometry (Å, °)

D—H⋯A D—H H⋯A DA D—H⋯A
C1—H1⋯Cl1 1.00 2.57 3.128 (3) 115
C1—H1⋯F1A 1.00 2.21 2.86 (5) 122
C2—H2A⋯Cl1A 0.99 2.31 2.91 (3) 118
C2—H2A⋯F1 0.99 2.32 2.898 (5) 116
C2—H2B⋯O2i 0.99 2.48 3.417 (3) 157
C5—H5⋯Cl1Aii 0.95 2.49 3.12 (3) 123
C8—H8A⋯Cl1A 0.99 2.35 3.01 (3) 123
C13—H13⋯O1 0.95 2.45 3.367 (3) 163
C16—H16⋯F1Aiii 0.95 2.50 3.35 (3) 149
Symmetry codes: (i) Mathematical equation; (ii) Mathematical equation; (iii) Mathematical equation.
[Figure 1]
Figure 1
The title mol­ecule with the atom-labelling scheme and displacement ellipsoids drawn at the 50% probability level. Only the major disorder component is displayed. Intra­molecular C—H⋯Cl, C—H⋯F, and C—H⋯O hydrogen bonds are shown as dashed lines.

3. Supra­molecular features and Hirshfeld surface analysis

In the crystal, C—H⋯O hydrogen bonds (Table 1[link]) link the mol­ecules into chains extending along the [010] direction (Fig. 2[link]) and weak C—H⋯F and C—H⋯Cl inter­actions (Table 1[link]) further link these chains into sheets parallel to the (100) plane (Figs. 1[link] and 2[link] in the supporting information). van der Waals inter­actions between the sheets also contribute to the cohesion of the mol­ecular packing. No ππ or C—H⋯π inter­actions are found.

[Figure 2]
Figure 2
A partial packing diagram showing the unit cell. Dashed lines indicate C—H⋯O hydrogen bonds. Only H atoms involved in the hydrogen bonds and the major disorder component are shown for clarity.

We carried out a Hirshfeld surface analysis to further investigate the inter­molecular inter­actions using Crystal Explorer 17.5 (Spackman et al., 2021View full citation). The Hirshfeld surface mapped over dnorm is illustrated in Fig. 3[link]. The red spots on the Hirshfeld surface plot indicate the inter­molecular C2—H2B⋯O2, C5—H5⋯Cl1A and C16—H16⋯F1A contacts shown in Table 1[link]. The overall two-dimensional fingerprint plot is shown in Fig. 4[link]a. The Hirshfeld surface analysis reveals that H⋯H (26.7%) and C⋯H/H⋯C (17.2%) contacts are the main contributors to the crystal packing (Tables 1[link] and 2[link]; Fig. 4[link]bc), followed by S⋯H/H⋯S (15.0%), O⋯H/H⋯O (12.0%), F⋯H/H⋯F (7.6%) and Cl⋯H/H⋯Cl (6.4%) contacts. The other minor contributions are less than 4.5%. The Hirshfeld surface analysis confirms the importance of H-atom contacts in the crystal (Hathwar et al., 2015View full citation).

Table 2
Summary of short inter­atomic contacts (Å)

Contact Distance Symmetry operation
H18A⋯H11 2.50 x, 1 − y, 1 − z
F1A⋯H16 2.50 x, Mathematical equation − y, Mathematical equation + z
H5⋯O1 2.64 1 − x, Mathematical equation + y, Mathematical equation − z
O2⋯H2B 2.48 x, −1 + y, z
O2⋯H17A 2.44 x, −Mathematical equation + y, Mathematical equation − z
H5⋯Cl1A 2.49 1 − x, 2 − y, 1 − z
O2⋯H11 2.68 x, Mathematical equation − y, Mathematical equation + z
H6⋯H6 2.32 1 − x, 3 − y, 1 − z
[Figure 3]
Figure 3
View of the three-dimensional Hirshfeld surface of the compound plotted over dnorm.
[Figure 4]
Figure 4
The two-dimensional fingerprint plots, showing (a) all inter­actions, and delineated into (b) H⋯H and (c) C⋯H/H⋯C inter­actions [de and di represent the distances from a point on the Hirshfeld surface to the nearest atoms outside (external) and inside (inter­nal) the surface, respectively].

4. Database survey

A search of the Cambridge Structural Database (CSD, Version 6.00, update of April 2025; Groom et al., 2016View full citation) found that the most closely related structures containing the 4-(2-chloro-6-fluoro­phen­yl)-1,7-di(thio­phen-2-yl)heptane-1,7-di­one unit are MIGVEE (Butcher et al., 2007View full citation), WEPJOR (Yathirajan et al., 2006View full citation) and XUJRAZ (Sharmoukh et al., 2025View full citation).

The angles between the plane of the benzene ring and those of the two thio­phene rings are 89.7 (5) and 63.7 (1)° for MIGVEE, 84.9 (2) and 68.8 (2) ° for WEPJOR, and 75.27 (5) and 83.8 (2)° for XUJRAZ. In MIGVEE, the mol­ecules are linked by C—Br⋯π and C—Cl⋯π inter­actions and there are no classical hydrogen bonds. In WEPJOR, the mol­ecules form layers parallel to (200) through C—H⋯O hydrogen bonds. C—H⋯π, C—Br⋯π, and C—O⋯π inter­actions formed between the layers strengthen the mol­ecular packing. In the crystal of XUJRAZ, C—H⋯O hydrogen bonds form chains of mol­ecules extending along the c-axis direction. These are linked by C—H⋯S hydrogen bonds and C—H⋯π inter­actions into corrugated layers parallel to the bc plane.

5. Synthesis and crystallization

2-Chloro-6-fluoro­benzaldehyde (10 mmol) was added into a solution of 1-(thio­phen-2-yl)ethan-1-one (20 mmol) in EtOH (60 mL). KOH pellets (25 mmol) were then added to the solution. The solution was stirred at room temperature for 8 h. The off-colourless solid was collected by filtration and washed with EtOH (3 × 10 mL). Recrystallization from CHCl3–MeOH afforded a white crystalline solid of the title compound (yield, 52%). The synthesis is shown in Fig. 5[link]. Analysis calculated for C19H14ClFO2S2: C, 58.09; H, 3.59. Found: C, 58.05; H, 3.55. 1H NMR (500 MHz, CDCl3): δ (ppm) 7.83 (dd, J = 1.0, 3.8 Hz, 2H, ArH), 7.68 (dd, J = 1.0, 4.9 Hz, 2H, ArH), 7.55–7.52 (m, 2H, ArH), 7.24 (d, J = 8.0 Hz, 1H, ArH), 7.08 (dd, J = 3.9, 4.8 Hz, 2H, ArH), 4.60 (p, J = 7.2 Hz, 1H, CH), 3.51 (dd, J = 7.1, 16.9 Hz, 2H, CH2), 3.39 (dd, J = 7.2, 16.9 Hz, 2H, CH2); 13C{H} NMR (125 MHz, CDCl3): δ (ppm) 198.6, 160.0, 144.1, 136.6, 134.6, 134.4, 133.4, 128.7, 128.4, 124.2, 113.3, 45.0, 36.5.

[Figure 5]
Figure 5
Synthesis of 3-(2-chloro-6-fluoro­phen­yl)-1,5-di(thio­phen-2-yl)pentane-1,5-dione.

6. Refinement

Crystal data, data collection and structure refinement details are summarized in Table 3[link]. All carbon-bound H atoms were positioned geometrically and refined as riding: C—H = 0.95–1.00 Å with Uiso(H) = 1.2Ueq(C). The –C6H3FCl group (C14–C19/Cl1/F1) atoms and the main group atom it is attached to (C1) were treated as disordered in a ratio of 0.931 (4):0.069 (4) over two positions. Refinement was performed by substituting the majority of the fluorine and chlorine atoms in the disorder with the minor portion's chlorine and fluorine atoms, respectively. The FLAT command was used to ensure that the atoms of the two disorder parts lie in the same plane. In the major and minor parts (C14–C19/Cl1/F1 and C14A–C19A/Cl1A/F1A) of the disorder group, the C—Cl and C—F bonds, as well as the corresponding C–C bond lengths (e.g. C14—C19 and C14A—C19A) of the benzene ring, and the C1—C14 and C1—C14A distances connecting the –C6H3FCl group to the main group, were forced to have the same value using the SADI command. Displacement parameters of similar corresponding atoms were forced to be the same using the EADP command. For the disordered main group atom (C1/C1A), the EXYZ and EADP commands were applied. One reflection (1 0 0), affected by the incident beam-stop was omitted in the final cycles of refinement.

Table 3
Experimental details

Crystal data
Chemical formula C19H14ClFO2S2
Mr 392.87
Crystal system, space group Monoclinic, P21/c
Temperature (K) 150
a, b, c (Å) 16.4479 (14), 7.6867 (6), 15.4738 (12)
β (°) 113.697 (2)
V3) 1791.4 (3)
Z 4
Radiation type Mo Kα
μ (mm−1) 0.47
Crystal size (mm) 0.28 × 0.21 × 0.11
 
Data collection
Diffractometer Bruker APEXII CCD
Absorption correction Multi-scan (SADABS; Krause et al., 2015View full citation)
Tmin, Tmax 0.868, 0.936
No. of measured, independent and observed [I > 2σ(I)] reflections 24966, 3678, 2523
Rint 0.069
(sin θ/λ)max−1) 0.626
 
Refinement
R[F2 > 2σ(F2)], wR(F2), S 0.043, 0.101, 1.02
No. of reflections 3678
No. of parameters 251
No. of restraints 19
H-atom treatment H-atom parameters constrained
Δρmax, Δρmin (e Å−3) 0.36, −0.33
Computer programs: APEX4 and SAINT (Bruker, 2012View full citation), SHELXS97 (Sheldrick, 2008View full citation), SHELXL2014 (Sheldrick, 2015View full citation), ORTEP-3 for Windows (Farrugia, 2012View full citation) and PLATON (Spek, 2020View full citation).

Supporting information


Computing details top

3-(2-Chloro-6-fluorophenyl)-1,5-bis(thiophen-2-yl)pentane-1,5-dione top
Crystal data top
C19H14ClFO2S2F(000) = 808
Mr = 392.87Dx = 1.457 Mg m3
Monoclinic, P21/cMo Kα radiation, λ = 0.71073 Å
a = 16.4479 (14) ÅCell parameters from 3391 reflections
b = 7.6867 (6) Åθ = 2.7–22.6°
c = 15.4738 (12) ŵ = 0.47 mm1
β = 113.697 (2)°T = 150 K
V = 1791.4 (3) Å3Plate, colourless
Z = 40.28 × 0.21 × 0.11 mm
Data collection top
Bruker APEXII CCD
diffractometer
2523 reflections with I > 2σ(I)
φ and ω scansRint = 0.069
Absorption correction: multi-scan
(SADABS; Krause et al., 2015)
θmax = 26.4°, θmin = 2.6°
Tmin = 0.868, Tmax = 0.936h = 1220
24966 measured reflectionsk = 99
3678 independent reflectionsl = 1919
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) = 0.101H-atom parameters constrained
S = 1.02 w = 1/[σ2(Fo2) + (0.041P)2 + 0.8461P]
where P = (Fo2 + 2Fc2)/3
3678 reflections(Δ/σ)max < 0.001
251 parametersΔρmax = 0.36 e Å3
19 restraintsΔρmin = 0.33 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*/UeqOcc. (<1)
S10.48547 (5)1.11343 (9)0.68846 (5)0.0347 (2)
S20.17955 (5)0.15490 (9)0.57749 (4)0.02808 (18)
O10.35484 (12)0.8198 (2)0.63059 (11)0.0325 (5)
O20.20623 (11)0.2763 (2)0.40727 (11)0.0257 (4)
C10.23408 (15)0.7006 (3)0.45142 (15)0.0185 (5)0.931 (4)
H10.2089850.7046360.5005030.022*0.931 (4)
C1A0.23408 (15)0.7006 (3)0.45142 (15)0.0185 (5)0.069 (4)
H1A0.2166150.7048500.5062770.022*0.069 (4)
C20.29032 (16)0.8652 (3)0.46245 (16)0.0211 (5)
H2A0.3249060.8525870.4231810.025*
H2B0.2499830.9658110.4378730.025*
C30.35410 (16)0.9041 (3)0.56334 (16)0.0222 (6)
C40.41533 (16)1.0496 (3)0.57579 (16)0.0216 (6)
C50.53198 (18)1.2697 (3)0.6448 (2)0.0334 (7)
H50.5777361.3456700.6833390.040*
C60.49693 (17)1.2742 (3)0.54950 (19)0.0296 (6)
H60.5154531.3527240.5135670.036*
C70.42941 (17)1.1482 (3)0.50947 (18)0.0256 (6)
H70.3971871.1336870.4434220.031*
C80.29140 (16)0.5332 (3)0.46852 (16)0.0195 (5)
H8A0.3108640.5187540.4161460.023*
H8B0.3451620.5465090.5277070.023*
C90.24180 (15)0.3726 (3)0.47531 (16)0.0192 (5)
C100.23621 (16)0.3363 (3)0.56578 (16)0.0206 (5)
C110.20209 (19)0.2051 (3)0.69187 (18)0.0319 (7)
H110.1830880.1362010.7312540.038*
C120.24999 (19)0.3535 (4)0.72113 (17)0.0328 (7)
H120.2679690.4006520.7827830.039*
C130.26995 (18)0.4295 (3)0.64853 (17)0.0300 (6)
H130.3031280.5338250.6562350.036*
F10.2498 (2)0.7339 (4)0.2741 (3)0.0361 (9)0.931 (4)
Cl10.04217 (6)0.63824 (16)0.44021 (6)0.0390 (3)0.931 (4)
C140.15660 (18)0.6954 (3)0.35533 (18)0.0185 (7)0.931 (4)
C150.1675 (2)0.7152 (5)0.2710 (2)0.0244 (8)0.931 (4)
C160.1007 (2)0.7139 (5)0.1826 (2)0.0326 (8)0.931 (4)
H160.1129920.7286420.1280860.039*0.931 (4)
C170.0151 (2)0.6907 (5)0.1749 (2)0.0361 (8)0.931 (4)
H170.0325230.6905950.1142420.043*0.931 (4)
C180.0023 (2)0.6679 (4)0.2535 (3)0.0328 (8)0.931 (4)
H180.0614410.6505490.2478140.039*0.931 (4)
C190.06845 (18)0.6705 (4)0.3424 (2)0.0230 (7)0.931 (4)
F1A0.068 (3)0.647 (5)0.466 (2)0.0361 (9)0.069 (4)
Cl1A0.2623 (17)0.701 (4)0.2830 (19)0.0390 (3)0.069 (4)
C14A0.1464 (16)0.672 (3)0.366 (2)0.0185 (7)0.069 (4)
C15A0.155 (2)0.687 (8)0.281 (3)0.0244 (8)0.069 (4)
C16A0.078 (3)0.687 (7)0.200 (3)0.0326 (8)0.069 (4)
H16A0.0805060.6989950.1400110.039*0.069 (4)
C17A0.002 (3)0.669 (8)0.206 (3)0.0361 (8)0.069 (4)
H17A0.0548190.6637550.1508980.043*0.069 (4)
C18A0.005 (3)0.657 (6)0.293 (3)0.0328 (8)0.069 (4)
H18A0.0616670.6487350.2940350.039*0.069 (4)
C19A0.068 (2)0.658 (6)0.380 (2)0.0230 (7)0.069 (4)
Atomic displacement parameters (Å2) top
U11U22U33U12U13U23
S10.0333 (4)0.0364 (4)0.0268 (4)0.0097 (3)0.0041 (3)0.0050 (3)
S20.0367 (4)0.0245 (4)0.0261 (3)0.0031 (3)0.0158 (3)0.0013 (3)
O10.0392 (12)0.0314 (11)0.0211 (9)0.0098 (9)0.0061 (9)0.0016 (8)
O20.0330 (11)0.0240 (10)0.0188 (9)0.0017 (8)0.0091 (8)0.0026 (8)
C10.0195 (13)0.0200 (13)0.0167 (12)0.0002 (11)0.0080 (11)0.0002 (10)
C1A0.0195 (13)0.0200 (13)0.0167 (12)0.0002 (11)0.0080 (11)0.0002 (10)
C20.0231 (14)0.0188 (13)0.0197 (12)0.0000 (11)0.0069 (11)0.0005 (10)
C30.0216 (14)0.0219 (13)0.0227 (13)0.0035 (11)0.0085 (11)0.0009 (11)
C40.0183 (13)0.0193 (13)0.0234 (13)0.0021 (11)0.0044 (11)0.0029 (11)
C50.0271 (16)0.0265 (15)0.0428 (17)0.0046 (13)0.0102 (14)0.0078 (13)
C60.0267 (15)0.0207 (14)0.0433 (17)0.0006 (12)0.0160 (14)0.0002 (12)
C70.0256 (15)0.0238 (14)0.0260 (13)0.0024 (12)0.0090 (12)0.0021 (11)
C80.0186 (13)0.0226 (13)0.0165 (12)0.0017 (11)0.0063 (11)0.0018 (10)
C90.0158 (13)0.0193 (13)0.0187 (13)0.0051 (11)0.0030 (11)0.0017 (10)
C100.0233 (14)0.0171 (13)0.0214 (13)0.0019 (11)0.0090 (11)0.0025 (10)
C110.0451 (18)0.0285 (16)0.0260 (14)0.0054 (14)0.0184 (14)0.0080 (12)
C120.0513 (19)0.0312 (16)0.0178 (13)0.0009 (14)0.0157 (13)0.0027 (11)
C130.0378 (17)0.0260 (15)0.0212 (13)0.0053 (13)0.0066 (13)0.0003 (11)
F10.0400 (19)0.0373 (17)0.0408 (15)0.0063 (11)0.0263 (13)0.0092 (11)
Cl10.0258 (6)0.0652 (6)0.0289 (5)0.0084 (5)0.0141 (4)0.0055 (5)
C140.0194 (14)0.0133 (13)0.0198 (14)0.0019 (11)0.0049 (12)0.0009 (10)
C150.0316 (17)0.021 (2)0.0197 (15)0.0010 (14)0.0093 (13)0.0025 (12)
C160.047 (2)0.0335 (19)0.0164 (16)0.0068 (16)0.0118 (14)0.0048 (13)
C170.035 (2)0.045 (2)0.0165 (17)0.0075 (16)0.0020 (15)0.0014 (15)
C180.0251 (16)0.0401 (18)0.0277 (19)0.0020 (14)0.0048 (17)0.0037 (18)
C190.0254 (16)0.0236 (15)0.0182 (16)0.0024 (12)0.0068 (14)0.0012 (13)
F1A0.0400 (19)0.0373 (17)0.0408 (15)0.0063 (11)0.0263 (13)0.0092 (11)
Cl1A0.0258 (6)0.0652 (6)0.0289 (5)0.0084 (5)0.0141 (4)0.0055 (5)
C14A0.0194 (14)0.0133 (13)0.0198 (14)0.0019 (11)0.0049 (12)0.0009 (10)
C15A0.0316 (17)0.021 (2)0.0197 (15)0.0010 (14)0.0093 (13)0.0025 (12)
C16A0.047 (2)0.0335 (19)0.0164 (16)0.0068 (16)0.0118 (14)0.0048 (13)
C17A0.035 (2)0.045 (2)0.0165 (17)0.0075 (16)0.0020 (15)0.0014 (15)
C18A0.0251 (16)0.0401 (18)0.0277 (19)0.0020 (14)0.0048 (17)0.0037 (18)
C19A0.0254 (16)0.0236 (15)0.0182 (16)0.0024 (12)0.0068 (14)0.0012 (13)
Geometric parameters (Å, º) top
S1—C51.703 (3)C10—C131.375 (3)
S1—C41.731 (2)C11—C121.357 (4)
S2—C111.700 (3)C11—H110.9500
S2—C101.727 (2)C12—C131.417 (3)
O1—C31.222 (3)C12—H120.9500
O2—C91.226 (3)C13—H130.9500
C1—C141.521 (3)F1—C151.342 (5)
C1—C21.536 (3)Cl1—C191.750 (3)
C1—C81.554 (3)C14—C191.395 (4)
C1—H11.0000C14—C151.395 (3)
C1A—C14A1.529 (19)C15—C161.368 (4)
C1A—C21.536 (3)C16—C171.376 (5)
C1A—C81.554 (3)C16—H160.9500
C1A—H1A1.0000C17—C181.368 (4)
C2—C31.520 (3)C17—H170.9500
C2—H2A0.9900C18—C191.401 (4)
C2—H2B0.9900C18—H180.9500
C3—C41.465 (3)F1A—C19A1.341 (19)
C4—C71.369 (3)Cl1A—C15A1.75 (2)
C5—C61.350 (4)C14A—C15A1.390 (19)
C5—H50.9500C14A—C19A1.39 (2)
C6—C71.415 (4)C15A—C16A1.37 (2)
C6—H60.9500C16A—C17A1.36 (2)
C7—H70.9500C16A—H16A0.9500
C8—C91.507 (3)C17A—C18A1.36 (2)
C8—H8A0.9900C17A—H17A0.9500
C8—H8B0.9900C18A—C19A1.39 (2)
C9—C101.466 (3)C18A—H18A0.9500
C5—S1—C491.38 (13)C13—C10—S2110.85 (18)
C11—S2—C1091.43 (12)C9—C10—S2119.83 (17)
C14—C1—C2111.15 (19)C12—C11—S2113.1 (2)
C14—C1—C8110.94 (19)C12—C11—H11123.4
C2—C1—C8111.47 (19)S2—C11—H11123.4
C14—C1—H1107.7C11—C12—C13111.8 (2)
C2—C1—H1107.7C11—C12—H12124.1
C8—C1—H1107.7C13—C12—H12124.1
C14A—C1A—C2122.0 (10)C10—C13—C12112.8 (2)
C14A—C1A—C8109.1 (9)C10—C13—H13123.6
C2—C1A—C8111.47 (19)C12—C13—H13123.6
C14A—C1A—H1A104.1C19—C14—C15113.4 (2)
C2—C1A—H1A104.1C19—C14—C1123.9 (2)
C8—C1A—H1A104.1C15—C14—C1122.7 (3)
C3—C2—C1114.36 (19)F1—C15—C16115.5 (3)
C3—C2—C1A114.36 (19)F1—C15—C14119.0 (3)
C3—C2—H2A108.7C16—C15—C14125.5 (3)
C1—C2—H2A108.7C15—C16—C17118.1 (3)
C3—C2—H2B108.7C15—C16—H16121.0
C1—C2—H2B108.7C17—C16—H16121.0
H2A—C2—H2B107.6C18—C17—C16120.8 (3)
O1—C3—C4121.5 (2)C18—C17—H17119.6
O1—C3—C2122.5 (2)C16—C17—H17119.6
C4—C3—C2116.1 (2)C17—C18—C19118.9 (3)
C7—C4—C3129.7 (2)C17—C18—H18120.5
C7—C4—S1110.67 (19)C19—C18—H18120.5
C3—C4—S1119.58 (18)C14—C19—C18123.2 (3)
C6—C5—S1112.9 (2)C14—C19—Cl1120.0 (2)
C6—C5—H5123.6C18—C19—Cl1116.8 (2)
S1—C5—H5123.6C15A—C14A—C19A127 (2)
C5—C6—C7112.1 (2)C15A—C14A—C1A113 (3)
C5—C6—H6124.0C19A—C14A—C1A119 (3)
C7—C6—H6124.0C16A—C15A—C14A117 (3)
C4—C7—C6113.0 (2)C16A—C15A—Cl1A125 (3)
C4—C7—H7123.5C14A—C15A—Cl1A118 (3)
C6—C7—H7123.5C17A—C16A—C15A120 (4)
C9—C8—C1112.44 (19)C17A—C16A—H16A120.1
C9—C8—C1A112.44 (19)C15A—C16A—H16A120.1
C9—C8—H8A109.1C18A—C17A—C16A120 (5)
C1—C8—H8A109.1C18A—C17A—H17A120.2
C9—C8—H8B109.1C16A—C17A—H17A120.2
C1—C8—H8B109.1C17A—C18A—C19A126 (5)
H8A—C8—H8B107.8C17A—C18A—H18A116.8
O2—C9—C10120.9 (2)C19A—C18A—H18A116.8
O2—C9—C8121.3 (2)F1A—C19A—C14A122 (3)
C10—C9—C8117.8 (2)F1A—C19A—C18A128 (4)
C13—C10—C9129.3 (2)C14A—C19A—C18A110 (3)
C14—C1—C2—C3165.2 (2)C11—C12—C13—C100.2 (4)
C8—C1—C2—C370.4 (2)C2—C1—C14—C19127.6 (3)
C14A—C1A—C2—C3158.3 (16)C8—C1—C14—C19107.8 (3)
C8—C1A—C2—C370.4 (2)C2—C1—C14—C1552.4 (3)
C1—C2—C3—O16.0 (3)C8—C1—C14—C1572.2 (3)
C1A—C2—C3—O16.0 (3)C19—C14—C15—F1177.7 (3)
C1—C2—C3—C4174.0 (2)C1—C14—C15—F12.2 (5)
C1A—C2—C3—C4174.0 (2)C19—C14—C15—C160.9 (5)
O1—C3—C4—C7173.8 (3)C1—C14—C15—C16179.2 (3)
C2—C3—C4—C76.1 (4)F1—C15—C16—C17178.4 (3)
O1—C3—C4—S14.3 (3)C14—C15—C16—C170.2 (6)
C2—C3—C4—S1175.73 (17)C15—C16—C17—C180.6 (5)
C5—S1—C4—C70.1 (2)C16—C17—C18—C190.8 (5)
C5—S1—C4—C3178.4 (2)C15—C14—C19—C180.7 (4)
C4—S1—C5—C60.3 (2)C1—C14—C19—C18179.3 (3)
S1—C5—C6—C70.5 (3)C15—C14—C19—Cl1178.5 (2)
C3—C4—C7—C6177.9 (2)C1—C14—C19—Cl11.4 (4)
S1—C4—C7—C60.4 (3)C17—C18—C19—C140.0 (5)
C5—C6—C7—C40.6 (3)C17—C18—C19—Cl1179.3 (2)
C14—C1—C8—C965.8 (3)C2—C1A—C14A—C15A55 (3)
C2—C1—C8—C9169.78 (19)C8—C1A—C14A—C15A78 (3)
C14A—C1A—C8—C952.7 (15)C2—C1A—C14A—C19A118 (2)
C2—C1A—C8—C9169.78 (19)C8—C1A—C14A—C19A110 (2)
C1—C8—C9—O297.9 (3)C19A—C14A—C15A—C16A0 (7)
C1A—C8—C9—O297.9 (3)C1A—C14A—C15A—C16A172 (4)
C1—C8—C9—C1081.2 (2)C19A—C14A—C15A—Cl1A179 (3)
C1A—C8—C9—C1081.2 (2)C1A—C14A—C15A—Cl1A9 (5)
O2—C9—C10—C13178.8 (3)C14A—C15A—C16A—C17A2 (8)
C8—C9—C10—C130.4 (4)Cl1A—C15A—C16A—C17A178 (4)
O2—C9—C10—S20.5 (3)C15A—C16A—C17A—C18A2 (8)
C8—C9—C10—S2179.57 (17)C16A—C17A—C18A—C19A2 (9)
C11—S2—C10—C130.3 (2)C15A—C14A—C19A—F1A179 (4)
C11—S2—C10—C9179.7 (2)C1A—C14A—C19A—F1A8 (5)
C10—S2—C11—C120.4 (2)C15A—C14A—C19A—C18A0 (6)
S2—C11—C12—C130.4 (3)C1A—C14A—C19A—C18A172 (3)
C9—C10—C13—C12179.4 (2)C17A—C18A—C19A—F1A180 (5)
S2—C10—C13—C120.1 (3)C17A—C18A—C19A—C14A0 (7)
Hydrogen-bond geometry (Å, º) top
D—H···AD—HH···AD···AD—H···A
C1—H1···Cl11.002.573.128 (3)115
C1—H1···F1A1.002.212.86 (5)122
C2—H2A···Cl1A0.992.312.91 (3)118
C2—H2A···F10.992.322.898 (5)116
C2—H2B···O2i0.992.483.417 (3)157
C5—H5···Cl1Aii0.952.493.12 (3)123
C8—H8A···Cl1A0.992.353.01 (3)123
C13—H13···O10.952.453.367 (3)163
C16—H16···F1Aiii0.952.503.35 (3)149
Symmetry codes: (i) x, y+1, z; (ii) x+1, y+2, z+1; (iii) x, y+3/2, z1/2.
Summary of short interatomic contacts (Å) top
ContactDistanceSymmetry operation
H18A···H112.50-x, 1 - y, 1 - z
F1A···H162.50x, 3/2 - y, 1/2 + z
H5···O12.641 - x, 1/2 + y, 3/2 - z
O2···H2B2.48x, -1 + y, z
O2···H17A2.44-x, -1/2 + y, 1/2 - z
H5···Cl1A2.491 - x, 2 - y, 1 - z
O2···H112.68x, 1/2 - y, 1/2 + z
H6···H62.321 - x, 3 - y, 1 - z
 

Acknowledgements

This work has been supported by the Baku State University (Azerbaijan). The authors' contributions are as follows. Conceptualization, AVG, MA and GMM; synthesis and X-ray analysis AVG; writing (review and editing of the manuscript) AVG and MA; funding acquisition, AVG, NDS; supervision, MA.

Funding information

This work has been supported by the Baku State University (Azerbaijan).

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