research communications\(\def\hfill{\hskip 5em}\def\hfil{\hskip 3em}\def\eqno#1{\hfil {#1}}\)

Journal logoCRYSTALLOGRAPHIC
COMMUNICATIONS
ISSN: 2056-9890

Synthesis and crystal structure of 2-(benzo[d]thia­zol-2-yl)-N′-[(E)-1-(4-bromo­phen­yl)ethyl­­idene]acetohydrazide

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aChemistry Department, Faculty of Science, Capital University, Helwan, Egypt, and bInstitut für Anorganische und Analytische Chemie, Technische Universität Braunschweig, Hagenring 30, D-38106 Braunschweig, Germany
*Correspondence e-mail: [email protected]

Edited by C. Schulzke, Universität Greifswald, Germany (Received 27 January 2026; accepted 6 February 2026; online 24 February 2026)

The title compound (E)-2-(benzo[d]thia­zol-2-yl)-N′-(1-(4-bromo­phen­yl)ethyl­idene)acetohydrazide, C17H14BrN3OS, crystallizes in space group P21/c with Z = 4. The configuration across the formal N=C double bond at the hydrazide moiety is E; the atom sequence C—C—C(= O)—N—N=C—(bromo­phen­yl) is very approximately planar (r.m.s. deviation 0.17 Å, when all carbon atoms of the bromo­phenyl group are included), being synperiplanar around the C(=O)—N bond and anti­periplanar (choosing the appropriate final atom CAr) elsewhere. The inter­planar angle to the benzo­thia­zole unit (r.m.s. deviation 0.01 Å) is 69.75 (2)°. The main packing feature is a classical inversion-symmetric dimer with hydrogen bonds of the type N—H⋯O=C. This combines with a rather long Nthia­zole⋯Br halogen bond to form a thick layer structure parallel to the bc plane.

1. Chemical context

The benzo­thia­zole scaffold is established as one of the most significant moieties in medicinal chemistry, because benzo­thia­zole derivatives are present in a broad range of natural products and bioactive compounds, and many derivatives exhibit significant activity while causing few side-effects (Keri et al., 2015View full citation). Benzo­thia­zole derivatives have attracted appreciable recent attention in medicinal chemistry because of their biological and pharmacological characteristics (Gill et al., 2015View full citation). Numerous biological activities, including anti­cancer, anti­fungal and anti­bacterial effects, are associated with the benzo­thia­zole moiety; a more extensive description can be found in our previous publication (Elboshi et al., 2026View full citation) and references therein.

We have synthesised new heterocyclic compounds with incorporated benzo­thia­zole motifs, and these too have demonstrated noteworthy biological activity (Azzam et al., 2017View full citation), e.g. benzo­thia­zole-substituted coumarin residues, which also have useful optical characteristics (Abdallah et al., 2023View full citation). We have described some new coumarin compounds that are currently being used as laser dyes for medicinal applications (Elgemeie, 1989View full citation). We have also reported new benzo­thia­zole-based heterocycles that showed significant fluorescence as well as biological importance (Azzam et al., 2022View full citation).

The goal of the current study was to design and produce benzo­thia­zolyl ethyl­idene-acetohydrazides inspired by the results of our earlier work. The 2-(benzo­thia­zol­yl)-[1-(4-bromo­phen­yl)ethyl­idene]acetohydrazide derivative 7 was synthesized in good yield by reacting 2-benzo­thia­zolyl aceto­hydrazide 4 with 4-bromo­phenyl­aceto­phenone 5 in refluxing ethanol for 3 h (Fig. 1[link]). The crystal structure of 7 was determined and is reported here.

[Scheme 1]
[Figure 1]
Figure 1
The synthesis of compound 7.

2. Structural commentary

The mol­ecule of compound 7 is shown in Fig. 2[link], with selected geometric parameters in Table 1[link]. The mol­ecular dimensions may be regarded as normal, e.g. the wide exocyclic angles at C3A and C7A. The configuration across the formal double bond N2=C10 is E, and this bond is some 0.06 Å shorter than the formal single bond N1—C9, although formal bond orders should be inter­preted carefully in view of probable delocalization of the multiple bonding. The approximate synperi­planarity of the sequence C2—C8—C9—O1 is associated with the intra­molecular S1⋯O1 contact of 3.1729 (10) Å, a feature that we have frequently observed in related compounds, generally with much shorter contact distances (e.g. Elboshi et al., 2026View full citation). As can be seen from the side view of the mol­ecule in Fig. 3[link], the atom sequence C2–C8–C9–N1–N2–C10–C11–C12 is very approximately planar (r.m.s. deviation 0.17 Å, including the carbon atoms of the bromo­phenyl group), being synperi­planar around the bond C9—N1 and anti­periplanar elsewhere. The inter­planar angle to the plane of the benzo­thia­zole unit (r.m.s. deviation 0.01 Å) is 69.75 (2)°. The coordination geometry at the nitro­gen atom N1 of the NH group is planar (r.m.s. deviation of 4 atoms 0.003 Å).

Table 1
Selected geometric parameters (Å, °)

S1—C7A 1.7342 (12) C9—O1 1.2307 (15)
S1—C2 1.7507 (12) C9—N1 1.3543 (15)
C2—N3 1.2976 (16) N1—N2 1.3764 (15)
N3—C3A 1.3909 (16) N2—C10 1.2942 (15)
C3A—C7A 1.4090 (17)    
       
C7A—S1—C2 89.24 (6) C7—C7A—S1 129.27 (10)
N3—C2—S1 115.90 (9) C3A—C7A—S1 109.07 (8)
C2—N3—C3A 110.63 (10) C9—N1—N2 119.49 (10)
N3—C3A—C4 125.01 (11) C10—N2—N1 116.53 (10)
N3—C3A—C7A 115.16 (10)    
       
N3—C2—C8—C9 −115.73 (13) C9—N1—N2—C10 −179.12 (12)
C2—C8—C9—O1 −10.43 (19) N1—N2—C10—C11 179.74 (11)
C2—C8—C9—N1 170.32 (12) N2—C10—C11—C12 −160.60 (12)
C8—C9—N1—N2 −1.76 (18)    
[Figure 2]
Figure 2
The mol­ecule of compound 7 in the crystal. Ellipsoids correspond to 50% probability levels.
[Figure 3]
Figure 3
‘Side view' of the mol­ecule of 7; hydrogen atoms are omitted and radii are arbitrary.

3. Supra­molecular features

The NH group at N1 is involved in a classical hydrogen bond to O1 via an inversion centre (Table 2[link]), leading to the well-known motif with graph set R22(8). Three borderline ‘weak' hydrogen bonds are also included in Table 2[link]. There is a further contact N3⋯Br1 (x, Mathematical equation − y, Mathematical equation + z) of 3.1572 (10) Å, with an N⋯Br—C angle of 161.26 (4)°, that may be regarded as a ‘halogen bond' [for reviews of this topic, see e.g. Cavallo et al. (2016View full citation) or Metrangolo et al. (2008View full citation)]. The combination of classical hydrogen bond plus halogen bond leads to the formation of a layer structure (Fig. 4[link]) parallel to the bc plane and with a thickness equal to the length of the a axis. Because the hydrogen bonds are seen almost end-on in Fig. 4[link], a projection of the structure parallel to the b axis (Fig. 5[link]) is also shown for the sake of clarity.

Table 2
Hydrogen-bond geometry (Å, °)

D—H⋯A D—H H⋯A DA D—H⋯A
N1—H01⋯O1i 0.91 (2) 1.98 (2) 2.8839 (14) 168 (2)
C7—H7⋯N3ii 0.95 2.68 3.5942 (17) 161
C17—H11B⋯Br1iii 0.98 2.93 3.7666 (12) 145
C17—H11C⋯N2iv 0.98 2.69 3.5464 (18) 147
Symmetry codes: (i) Mathematical equation; (ii) Mathematical equation; (iii) Mathematical equation; (iv) Mathematical equation.
[Figure 4]
Figure 4
Packing diagram of compound 7: One layer viewed perpendicular to the bc plane, showing classical hydrogen bonds (seen almost end-on, cf. Fig. 5[link]) and halogen bonds (both as thick dashed lines). Hydrogen atoms not involved in the hydrogen bonding are omitted. Labels indicate atoms of the asymmetric unit.
[Figure 5]
Figure 5
Simplified packing diagram of compound 7 shown as a projection parallel to the b axis.

4. Database survey

Searches were conducted using CSD Version 6.00 (update August 2025; Groom et al., 2016View full citation) and the ConQuest routine (Bruno et al., 2002View full citation), Version 2025.2.0. The main search was based on the standard benzo[d]thia­zole ring system with appropriately defined coordination numbers but no limitations on bond orders or on substituents except for that at C2; this substituent was set to –C4–C3(–O1)–Nany (as in 7), where the superscripts indicate coordination number, whereby all bond orders in this fragment were allowed. This gave 18 hits. Only three of these structures had a 2-substituent of the type –C4–C3(–O1)–Nany–Nany (as in 7): 4-(1,3-benzo­thia­zol-2-yl)-5-methyl-2-phenyl-4-(prop-2-en-1-yl)-2,4-di­hydro-3H-pyrazol-3-one (refcode DOMYAI: Chakib et al., 2019View full citation) and our previous structures, the hydrazine derivatives N′-[(1,3-benzo­thia­zol-2-yl)acet­yl]benzohydrazide (IYUSIH; Azzam et al., 2021View full citation) and 2-(1,3-benzo­thia­zol-2-yl)-N′-[(4-methyl­phen­yl)sulfon­yl]acetohydrazide (JEBQOZ; Azzam et al., 2017View full citation). Similarly, only three structures involved the 2-substituent –CH2–C3(–O1)–Nany (as in 7), namely IYUSIH, JEBQOZ and 2-(1,3-benzo­thia­zol-2-yl)-N-(2-hy­droxy­phen­yl)acetamide (HANREW; Dauer et al., 2017View full citation).

5. Synthesis and crystallization

A mixture of 2-benzo­thia­zolyl acetohydrazide 4 (2.072 g, 0.01 mol) and 4-bromo­phenyl­aceto­phenone 5 (3.98 g, 0.02 mol) was refluxed in ethanol (30 mL) for 3 h. The colourless solid product 7 thus formed was filtered from the hot solution, washed with a mixture of petroleum ether and ethyl acetate (1:1) and then recrystallized from ethanol.

Yellow solid; yield 80%; m.p. 466–468 K. IR (KBr, cm−1): ν 3182 (NH), 3054 (Ar—CH), 1669 (CO); 1H NMR (400 MHz, DMSO-d6): δ 2.22 (s, 3H, CH3), 4.36 (s, 2H, CH2), 7.38–7.62 (m, 4H, Ar-H & benzo­thia­zole-H), 7.74 (d, J = 8.4, 2H, Ar-H), 7.96 (d, J = 8.0 Hz, 1H, benzo­thia­zole-H), 8.04 (d, J = 7.6 Hz, 1H, benzo­thia­zole-H), 10.90 (s, 1H, NH). Analysis: calculated for C17H14BrN3OS (388.28): C 52.59, H 3.63, N 10.82. Found: C 52.53, H 3.60, N 10.81%.

6. Refinement

Details of data collection and structure refinement are summarized in Table 3[link]. The benzo­thia­zole system was assigned the standard IUPAC numbering. The hydrogen atom of the NH group was refined freely. The methyl group was refined as an idealized rigid group with C—H = 0.98 Å, H—C—H = 109.5°, allowed to rotate but not tip (AFIX 137). Other hydrogen atoms were included using a riding model starting from calculated positions (C—Harom = 0.95, C—Hmethyl­ene = 0.98 Å). The U(H) values were fixed at 1.5 × Ueq of the parent carbon atoms for the methyl group and 1.2 × Ueq for the other hydrogens.

Table 3
Experimental details

Crystal data
Chemical formula C17H14BrN3OS
Mr 388.28
Crystal system, space group Monoclinic, P21/c
Temperature (K) 100
a, b, c (Å) 13.4768 (3), 6.73234 (16), 17.8734 (5)
β (°) 98.169 (2)
V3) 1605.21 (7)
Z 4
Radiation type Mo Kα
μ (mm−1) 2.70
Crystal size (mm) 0.25 × 0.10 × 0.04
 
Data collection
Diffractometer XtaLAB Synergy
Absorption correction Multi-scan (CrysAlis PRO; Rigaku OD, 2024View full citation)
Tmin, Tmax 0.563, 1.000
No. of measured, independent and observed [I > 2σ(I)] reflections 143532, 8606, 7894
Rint 0.063
θ values (°) θmax = 37.8, θmin = 2.3
(sin θ/λ)max−1) 0.862
 
Refinement
R[F2 > 2σ(F2)], wR(F2), S 0.047, 0.085, 1.18
No. of reflections 8606
No. of parameters 213
H-atom treatment H atoms treated by a mixture of independent and constrained refinement
Δρmax, Δρmin (e Å−3) 1.44, −0.71
Computer programs: CrysAlis PRO (Rigaku OD, 2024View full citation), SHELXT (Sheldrick, 2015aView full citation), SHELXL2019/3 (Sheldrick, 2015bView full citation), XP (Bruker, 1998View full citation) and publCIF (Westrip, 2010View full citation).

Supporting information


Computing details top

2-(Benzo[d]thiazol-2-yl)-N'-[(E)-1-(4-bromophenyl)ethylidene]acetohydrazide top
Crystal data top
C17H14BrN3OSF(000) = 784
Mr = 388.28Dx = 1.607 Mg m3
Monoclinic, P21/cMo Kα radiation, λ = 0.71073 Å
a = 13.4768 (3) ÅCell parameters from 56121 reflections
b = 6.73234 (16) Åθ = 2.3–43.5°
c = 17.8734 (5) ŵ = 2.70 mm1
β = 98.169 (2)°T = 100 K
V = 1605.21 (7) Å3Lath, colourless
Z = 40.25 × 0.10 × 0.04 mm
Data collection top
XtaLAB Synergy
diffractometer
8606 independent reflections
Radiation source: micro-focus sealed X-ray tube, PhotonJet (Mo) X-ray Source7894 reflections with I > 2σ(I)
Mirror monochromatorRint = 0.063
Detector resolution: 10.0000 pixels mm-1θmax = 37.8°, θmin = 2.3°
ω scansh = 2323
Absorption correction: multi-scan
(CrysAlisPro; Rigaku OD, 2024)
k = 1111
Tmin = 0.563, Tmax = 1.000l = 3030
143532 measured reflections
Refinement top
Refinement on F2Primary atom site location: dual
Least-squares matrix: fullHydrogen site location: mixed
R[F2 > 2σ(F2)] = 0.047H atoms treated by a mixture of independent and constrained refinement
wR(F2) = 0.085 w = 1/[σ2(Fo2) + (0.0311P)2 + 1.1712P]
where P = (Fo2 + 2Fc2)/3
S = 1.18(Δ/σ)max = 0.001
8606 reflectionsΔρmax = 1.44 e Å3
213 parametersΔρmin = 0.71 e Å3
0 restraints
Fractional atomic coordinates and isotropic or equivalent isotropic displacement parameters (Å2) top
xyzUiso*/Ueq
S10.16962 (2)1.25918 (5)0.49911 (2)0.01614 (6)
C20.17813 (8)1.00142 (18)0.51133 (7)0.01334 (18)
N30.12596 (8)0.92656 (15)0.56014 (6)0.01357 (16)
C3A0.07440 (8)1.07504 (17)0.59266 (7)0.01226 (17)
C40.01259 (9)1.0444 (2)0.64826 (7)0.0167 (2)
H40.0032190.9148270.6671360.020*
C50.03465 (10)1.2067 (2)0.67519 (8)0.0185 (2)
H50.0767181.1880630.7129900.022*
C60.02120 (9)1.3985 (2)0.64740 (8)0.0176 (2)
H60.0550251.5072380.6663810.021*
C70.04045 (9)1.43262 (19)0.59281 (7)0.0156 (2)
H70.0498961.5626580.5744290.019*
C7A0.08812 (8)1.26853 (17)0.56588 (7)0.01244 (17)
C80.23962 (9)0.8749 (2)0.46650 (8)0.0168 (2)
H8A0.2175780.8982760.4119830.020*
H8B0.2272290.7333550.4770200.020*
C90.35099 (8)0.91582 (18)0.48404 (7)0.01371 (18)
O10.38489 (7)1.05873 (16)0.52236 (7)0.0214 (2)
N10.41315 (8)0.78849 (16)0.45479 (7)0.01472 (17)
H010.4799 (18)0.818 (3)0.4639 (13)0.028 (6)*
N20.37355 (8)0.62797 (16)0.41312 (6)0.01411 (17)
C100.43690 (9)0.51041 (18)0.38756 (7)0.01316 (18)
C110.39222 (9)0.33802 (17)0.34310 (7)0.01298 (18)
C120.44925 (9)0.17000 (18)0.33140 (7)0.01525 (19)
H130.5179770.1652440.3525720.018*
C130.40666 (9)0.00945 (19)0.28910 (7)0.0158 (2)
H140.4458090.1044280.2818310.019*
C140.30657 (9)0.01796 (18)0.25778 (7)0.01412 (18)
Br10.24979 (2)0.19335 (2)0.19566 (2)0.01864 (4)
C150.24758 (9)0.1824 (2)0.26853 (8)0.0181 (2)
H160.1790470.1864590.2468260.022*
C160.29056 (9)0.34051 (19)0.31154 (8)0.0171 (2)
H170.2504700.4523120.3197440.021*
C170.54844 (9)0.5433 (2)0.40014 (8)0.0166 (2)
H11A0.5644140.6640900.3736660.025*
H11B0.5820020.4293310.3805910.025*
H11C0.5715790.5579480.4543700.025*
Atomic displacement parameters (Å2) top
U11U22U33U12U13U23
S10.01733 (12)0.01212 (11)0.02066 (14)0.00074 (9)0.00852 (10)0.00166 (10)
C20.0104 (4)0.0123 (4)0.0171 (5)0.0004 (3)0.0012 (3)0.0023 (4)
N30.0124 (4)0.0112 (4)0.0167 (4)0.0010 (3)0.0007 (3)0.0009 (3)
C3A0.0112 (4)0.0119 (4)0.0133 (4)0.0005 (3)0.0005 (3)0.0013 (3)
C40.0156 (4)0.0188 (5)0.0161 (5)0.0014 (4)0.0032 (4)0.0030 (4)
C50.0149 (4)0.0250 (6)0.0162 (5)0.0006 (4)0.0048 (4)0.0010 (5)
C60.0142 (4)0.0208 (5)0.0178 (5)0.0029 (4)0.0025 (4)0.0036 (4)
C70.0155 (4)0.0131 (4)0.0181 (5)0.0030 (4)0.0022 (4)0.0011 (4)
C7A0.0116 (4)0.0113 (4)0.0145 (5)0.0010 (3)0.0022 (3)0.0005 (3)
C80.0114 (4)0.0165 (5)0.0226 (6)0.0001 (4)0.0021 (4)0.0074 (4)
C90.0111 (4)0.0137 (4)0.0163 (5)0.0006 (3)0.0018 (3)0.0037 (4)
O10.0125 (3)0.0209 (4)0.0306 (5)0.0009 (3)0.0026 (3)0.0145 (4)
N10.0116 (4)0.0138 (4)0.0191 (5)0.0003 (3)0.0031 (3)0.0059 (3)
N20.0135 (4)0.0134 (4)0.0156 (4)0.0002 (3)0.0024 (3)0.0038 (3)
C100.0131 (4)0.0133 (4)0.0132 (4)0.0003 (3)0.0026 (3)0.0025 (4)
C110.0136 (4)0.0126 (4)0.0129 (4)0.0001 (3)0.0026 (3)0.0021 (3)
C120.0145 (4)0.0143 (5)0.0164 (5)0.0021 (3)0.0000 (4)0.0032 (4)
C130.0165 (4)0.0133 (4)0.0171 (5)0.0019 (4)0.0012 (4)0.0031 (4)
C140.0159 (4)0.0130 (4)0.0140 (5)0.0026 (3)0.0036 (4)0.0029 (4)
Br10.01679 (5)0.01735 (6)0.02281 (7)0.00640 (4)0.00638 (4)0.00819 (5)
C150.0133 (4)0.0176 (5)0.0228 (6)0.0006 (4)0.0006 (4)0.0050 (4)
C160.0134 (4)0.0151 (5)0.0225 (6)0.0013 (4)0.0015 (4)0.0053 (4)
C170.0126 (4)0.0186 (5)0.0187 (5)0.0004 (4)0.0027 (4)0.0068 (4)
Geometric parameters (Å, º) top
S1—C7A1.7342 (12)C12—C131.3950 (17)
S1—C21.7507 (12)C13—C141.3862 (17)
C2—N31.2976 (16)C14—C151.3919 (18)
C2—C81.4977 (17)C14—Br11.8975 (12)
N3—C3A1.3909 (16)C15—C161.3905 (18)
C3A—C41.3998 (17)C4—H40.9500
C3A—C7A1.4090 (17)C5—H50.9500
C4—C51.385 (2)C6—H60.9500
C5—C61.405 (2)C7—H70.9500
C6—C71.3875 (19)C8—H8A0.9900
C7—C7A1.3973 (17)C8—H8B0.9900
C8—C91.5144 (16)N1—H010.91 (2)
C9—O11.2307 (15)C12—H130.9500
C9—N11.3543 (15)C13—H140.9500
N1—N21.3764 (15)C15—H160.9500
N2—C101.2942 (15)C16—H170.9500
C10—C111.4849 (17)C17—H11A0.9800
C10—C171.5044 (17)C17—H11B0.9800
C11—C121.3999 (17)C17—H11C0.9800
C11—C161.4057 (17)
C7A—S1—C289.24 (6)C16—C15—C14118.95 (11)
N3—C2—C8122.18 (11)C15—C16—C11121.23 (11)
N3—C2—S1115.90 (9)C5—C4—H4120.7
C8—C2—S1121.90 (9)C3A—C4—H4120.7
C2—N3—C3A110.63 (10)C4—C5—H5119.5
N3—C3A—C4125.01 (11)C6—C5—H5119.5
N3—C3A—C7A115.16 (10)C7—C6—H6119.3
C4—C3A—C7A119.84 (11)C5—C6—H6119.3
C5—C4—C3A118.66 (12)C6—C7—H7121.2
C4—C5—C6120.91 (12)C7A—C7—H7121.2
C7—C6—C5121.40 (12)C2—C8—H8A108.9
C6—C7—C7A117.51 (12)C9—C8—H8A108.9
C7—C7A—C3A121.67 (11)C2—C8—H8B108.9
C7—C7A—S1129.27 (10)C9—C8—H8B108.9
C3A—C7A—S1109.07 (8)H8A—C8—H8B107.8
C2—C8—C9113.15 (10)C9—N1—H01116.1 (15)
O1—C9—N1120.57 (11)N2—N1—H01124.4 (15)
O1—C9—C8122.41 (11)C13—C12—H13119.5
N1—C9—C8117.01 (10)C11—C12—H13119.5
C9—N1—N2119.49 (10)C14—C13—H14120.4
C10—N2—N1116.53 (10)C12—C13—H14120.4
N2—C10—C11115.41 (10)C16—C15—H16120.5
N2—C10—C17123.54 (11)C14—C15—H16120.5
C11—C10—C17121.04 (10)C15—C16—H17119.4
C12—C11—C16118.30 (11)C11—C16—H17119.4
C12—C11—C10121.47 (10)C10—C17—H11A109.5
C16—C11—C10120.23 (10)C10—C17—H11B109.5
C13—C12—C11120.98 (11)H11A—C17—H11B109.5
C14—C13—C12119.25 (11)C10—C17—H11C109.5
C13—C14—C15121.28 (11)H11A—C17—H11C109.5
C13—C14—Br1119.58 (9)H11B—C17—H11C109.5
C15—C14—Br1119.09 (9)
C7A—S1—C2—N30.02 (10)C2—C8—C9—O110.43 (19)
C7A—S1—C2—C8178.31 (10)C2—C8—C9—N1170.32 (12)
C8—C2—N3—C3A178.76 (11)O1—C9—N1—N2178.97 (12)
S1—C2—N3—C3A0.44 (13)C8—C9—N1—N21.76 (18)
C2—N3—C3A—C4178.97 (12)C9—N1—N2—C10179.12 (12)
C2—N3—C3A—C7A0.82 (14)N1—N2—C10—C11179.74 (11)
N3—C3A—C4—C5179.62 (12)N1—N2—C10—C171.04 (19)
C7A—C3A—C4—C50.60 (18)N2—C10—C11—C12160.60 (12)
C3A—C4—C5—C60.1 (2)C17—C10—C11—C1220.16 (18)
C4—C5—C6—C70.7 (2)N2—C10—C11—C1619.43 (18)
C5—C6—C7—C7A0.57 (19)C17—C10—C11—C16159.82 (12)
C6—C7—C7A—C3A0.15 (18)C16—C11—C12—C130.41 (19)
C6—C7—C7A—S1179.52 (10)C10—C11—C12—C13179.56 (12)
N3—C3A—C7A—C7179.45 (11)C11—C12—C13—C140.6 (2)
C4—C3A—C7A—C70.75 (18)C12—C13—C14—C150.8 (2)
N3—C3A—C7A—S10.82 (13)C12—C13—C14—Br1176.63 (10)
C4—C3A—C7A—S1178.98 (9)C13—C14—C15—C160.1 (2)
C2—S1—C7A—C7179.84 (12)Br1—C14—C15—C16177.39 (11)
C2—S1—C7A—C3A0.46 (9)C14—C15—C16—C111.0 (2)
N3—C2—C8—C9115.73 (13)C12—C11—C16—C151.2 (2)
S1—C2—C8—C966.05 (14)C10—C11—C16—C15178.79 (13)
Hydrogen-bond geometry (Å, º) top
D—H···AD—HH···AD···AD—H···A
N1—H01···O1i0.91 (2)1.98 (2)2.8839 (14)168 (2)
C7—H7···N3ii0.952.683.5942 (17)161
C17—H11B···Br1iii0.982.933.7666 (12)145
C17—H11C···N2iv0.982.693.5464 (18)147
Symmetry codes: (i) x+1, y+2, z+1; (ii) x, y+1, z; (iii) x+1, y+1/2, z+1/2; (iv) x+1, y+1, z+1.
 

Acknowledgements

The authors acknowledge support by the Open Access Publication Funds of the Technical University of Braunschweig.

References

Return to citationAbdallah, A. E. M., Abdel-Latif, S. A. & Elgemeie, G. H. (2023). ACS Omega 8, 19587–19602.  Web of Science CrossRef PubMed Google Scholar
Return to citationAzzam, R. A., Elgemeie, G. H., Elsayed, R. E. & Jones, P. G. (2017). Acta Cryst. E73, 1041–1043.  Web of Science CSD CrossRef IUCr Journals Google Scholar
Return to citationAzzam, R. A., Elgemeie, G. H., Seif, M. M. & Jones, P. G. (2021). Acta Cryst. E77, 891–894.  Web of Science CSD CrossRef IUCr Journals Google Scholar
Return to citationAzzam, R. A., Gad, N. M. & Elgemeie, G. H. (2022). ACS Omega 7, 35656–35667.  CrossRef PubMed Google Scholar
Return to citationBruker (1998). XP. Bruker Analytical X–Ray Instruments, Madison, Wisconsin, USA.  Google Scholar
Return to citationBruno, I. J., Cole, J. C., Edgington, P. R., Kessler, M., Macrae, C. F., McCabe, P., Pearson, J. & Taylor, R. (2002). Acta Cryst. B58, 389–397.  Web of Science CrossRef CAS IUCr Journals Google Scholar
Return to citationCavallo, G., Metrangolo, P., Milani, R., Pilati, T., Priimagi, A., Resnati, G. & Terraneo, G. (2016). Chem. Rev. 116, 2478–2601.  Web of Science CrossRef CAS PubMed Google Scholar
Return to citationChakib, I., El Bakri, Y., Lai, C.-H., Benbacer, L., Zerzouf, A., Essassi, E. M. & Mague, J. T. (2019). J. Mol. Struct. 1198, 126910.  CrossRef Google Scholar
Return to citationDauer, D.-R., Koehne, I., Herbst-Irmer, R. & Stalke, D. (2017). Eur. J. Inorg. Chem. pp. 1966–1978.  Web of Science CSD CrossRef Google Scholar
Return to citationElboshi, H. A., Azzam, R. A., Elgemeie, G. H. & Jones, P. G. (2026). Acta Cryst. E82, 182–186.  CrossRef IUCr Journals Google Scholar
Return to citationElgemeie, G. H. (1989). Chem. Ind. 19, 653–654.  Google Scholar
Return to citationGill, R. K., Rawal, R. K. & Bariwal, J. (2015). Arch. Pharm. 348, 155–178.  Web of Science CrossRef CAS Google Scholar
Return to citationGroom, C. R., Bruno, I. J., Lightfoot, M. P. & Ward, S. C. (2016). Acta Cryst. B72, 171–179.  Web of Science CrossRef IUCr Journals Google Scholar
Return to citationKeri, R. S., Patil, M. R., Patil, S. A. & Budagumpi, S. (2015). Eur. J. Med. Chem. 89, 207–251.  Web of Science CrossRef CAS PubMed Google Scholar
Return to citationMetrangolo, P., Meyer, F., Pilati, T., Resnati, G. & Terraneo, G. (2008). Angew. Chem. Int. Ed. 47, 6114–6127.  Web of Science CrossRef CAS Google Scholar
Return to citationRigaku OD. (2024). CrysAlis PRO. Rigaku Oxford Diffraction, Yarnton, England.  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 citationWestrip, S. P. (2010). J. Appl. Cryst. 43, 920–925.  Web of Science CrossRef CAS IUCr Journals Google Scholar

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