| Literature DB >> 32570910 |
Agnieszka Kudelko1, Monika Olesiejuk1, Marcin Luczynski1, Marcin Swiatkowski2, Tomasz Sieranski2, Rafal Kruszynski2.
Abstract
Three series of azo dyes derived from 2-amino-5-aryl-1,3,4-thiadiazoles and aniline, N,N-dimethylaniline and phenol were synthesized in high yields by a conventional diazotization-coupling sequence. The chemical structures of the prepared compounds were confirmed by 1H-NMR, 13C-NMR, IR, UV-Vis spectroscopy, mass spectrometry and elemental analysis. In addition, the X-ray single crystal structure of a representative azo dye was presented. For explicit determination of the influence of a substituent on radiation absorption in UV-Vis range, time-dependent density functional theory calculations were performed.Entities:
Keywords: 2-arylazo-5-aryl-1,3,4-thiadiazoles; azo-coupling reactions; crystal structure; heterocycles
Mesh:
Substances:
Year: 2020 PMID: 32570910 PMCID: PMC7356117 DOI: 10.3390/molecules25122822
Source DB: PubMed Journal: Molecules ISSN: 1420-3049 Impact factor: 4.411
Scheme 1Preparation of 2-amino-1,3,4-thiadiazole precursors (3a–e) and synthesis of 2-arylazo-5-aryl-1,3,4-thiadiazole dyes (4a–e, 5a–e, 6a–e). Reaction conditions: (i) toluene, reflux, 5–15 h; (ii) toluene, NaHCO3, H2O, rt, 24 h; (iii) conc. H2SO4, 24 h and then aqueous NH3; (iv) NaNO2, conc. H2SO4, AcOH/EtCOOH, 0–5 °C; (v) H2O, 0–5 °C and then Na2CO3.
Figure 1UV-Vis absorption spectra of the studied azo dyes in MeOH at a concentration of 4.0 × 10−5-mol/L at room temperature: (Series 4) Absorption spectra of azo dyes 4a–e containing 4-aminophenylazo group; (Series 5) absorption spectra of azo dyes 5a–e containing 4-(N,N-dimethylamino)phenylazo group; (Series 6) absorption spectra of azo dyes 6a–e containing 4-hydroxyphenylazo group. Respective calculated spectra are shown as well.
Most important electronic transitions. H letter indicates Highest Occupied Molecular Orbital HOMO, L indicates Lowest Unoccupied Molecular Orbital LUMO and +/− (number) represent subsequent orbitals above HOMO and LUMO, respectively. The logarithm of molar absorption coefficients log ε and oscillator strengths are given in parenthesis under the wavelengths, respectively for experimental and calculated maxima. The letters a–e stand for the particular compound in a given series (4, 5 or 6).
| λmax (nm) | The Most Important Orbitals Involved in Electronic Transitions | Character of Transition | |||||||||
|---|---|---|---|---|---|---|---|---|---|---|---|
| Experimental | Calculated | ||||||||||
|
| |||||||||||
|
|
|
|
|
|
|
|
|
|
| ||
| 237 | 256 | 267 | 249 | 248 | 261.44 | 276.70 | 237.50 | 256.39 | 270.17 | ( | ( |
| 262.74 | 280.67 | 253.28 | 274.45 | 273.29 | ( | ( | |||||
| 266.87 | 268.23 | ( | ( | ||||||||
| 272.57 | ( | ( | |||||||||
| 285 | 286 | 286 | 284 | ||||||||
| 316 | 319 | 321 | 318 | 319 | 325.66 | 322.13 | 312.40 | 333.77 | 324.73 | ( | ( |
| 344.08 | ( | ( | |||||||||
| 491 | 491 | 507 | 496 | 492 | 383.91 | 428.57 | ( | ( | |||
| 459.54 | 478.70 | 529.34 | 464.44 | 464.82 | H→L | ( | |||||
|
| |||||||||||
|
|
|
|
|
|
|
|
|
|
| ||
| 243 | 256 | 249 | 251 | 245 | 264.95 | 278.83 | 241.40 | 256.30 | 270.21 (0.0655) | ( | ( |
| 275.87 | 283.75 | 261.09 | 274.64 | 270.38 (0.0853) | ( | ( | |||||
| 281.40 | 287.77 | 277.34 | 282.30 | 279.49 (0.2116) | ( | ( | |||||
| 281.87 | ( | ( | |||||||||
| 293 | 293 | 299 | 290 | 295 | |||||||
| 320 | 334 | 325 | 323 | 337.91 | 333.19 | 353.80 | 346.81 | 336.73 (0.0263) | ( | ( | |
| 515 | 515 | 530 | 520 | 515 | 393.91 | 453.15 | ( | ( | |||
| 483.86 | 497.00 | 568.89 | 488.69 | 487.35 (1.5439) | H→L | ( | |||||
|
| |||||||||||
|
|
|
|
|
|
|
|
|
|
| ||
| 220.52 | ( | ( | |||||||||
| 236 | 231 | 234.73 | 232.01 | ( | ( | ||||||
| 256 | 254 | 260 | 245 | 243 | 251.23 | 234.51 | 249.20 | 238.98 | 234.61 | ( | ( |
| 254.98 | 271.99 | 264.75 | 251.23 | 265.07 | ( | ( | |||||
| 262.06 | 266.81 | ( | ( | ||||||||
| 270.78 | ( | ( | |||||||||
| 298 | 291 | 290 | 290 | 297.41 | 302.67 | 304.17 | 298.30 | ( | ( | ||
| 325.44 | ( | ( | |||||||||
| 310 | 305.19 | ( | ( | ||||||||
| 405 | 415 | 410 | 409 | 409 | 341.08 | ( | ( | ||||
| 345.44 | 370.43 | 385.35 | 355.56 | 355.42 | ( | ( | |||||
| 432.77 | 471.46 | 458.02 | 439.27 | 444.00 | H→L | ( | |||||
Used abbreviations: n—non-bonding orbital; S-ring—thiadiazole ring; C6-ring—benzene ring; *—antibonding orbital.
Figure 2Molecular structure of compound 5b plotted with 50% probability of displacement ellipsoids. Hydrogen atoms are drawn as spheres with arbitrary radii.
Selected structural data of studied compound 5b.
| i—j | dij [Å] | i—j—k | αijk [°] | i—j—k | αijk [°] |
|---|---|---|---|---|---|
| S1—C1 | 1.7462(14) | C1—S1—C2 | 86.22(7) | C2—C11—C16 | 122.25(13) |
| S1—C2 | 1.7366(14) | S1—C2—N2 | 114.29(11) | C5—C6—N5 | 121.16(12) |
| C1—N1 | 1.3092(18) | C2—N2—N1 | 112.80(12) | C7—C6—N5 | 121.27(12) |
| C2—N2 | 1.3124(18) | N2—N1—C1 | 112.25(12) | C6—N5—C9 | 120.76(12) |
| N1—N2 | 1.3757(17) | N1—C1—S1 | 114.42(11) | C6—N5—C10 | 120.34(12) |
| C1—N3 | 1.3821(18) | N1—C1—N3 | 120.62(13) | C9—N5—C10 | 118.16(12) |
| N3—N4 | 1.2907(16) | S1—C1—N3 | 124.91(10) | C13—C14—O1 | 115.86(12) |
| N4—C3 | 1.3851(18) | C1—N3—N4 | 111.67(11) | C15—C14—O1 | 124.38(13) |
| C2—C11 | 1.4651(19) | N3—N4—C3 | 115.29(11) | C14—O1—C17 | 117.14(11) |
| N5—C6 | 1.3520(18) | N4—C3—C4 | 125.47(12) | ||
| N5—C9 | 1.4635(18) | N4—C3—C8 | 116.30(12) | ||
| N5—C10 | 1.4606(18) | S1—C2—C11 | 122.98(10) | ||
| O1—C14 | 1.3610(17) | N2—C2—C11 | 122.55(13) | ||
| O1—C17 | 1.4346(17) | C2—C11—C12 | 118.81(13) |
Non-classic hydrogen bonds and the first level graph motifs in the studied compound. Cg(C3) indicates centroid of ring containing C3 atom.
| D-H•••A | d(D-H) [Å] | d(H•••A) [Å] | d(D•••A) [Å] | <(DHA) [°] | Gda(n) |
|---|---|---|---|---|---|
| C9—H9A•••N1 i | 0.98 | 2.58 | 3.5351(1) | 165.4 | R22(22) |
| C10—H10B•••O1 ii | 0.98 | 2.54 | 3.5031(1) | 166.3 | C(17) |
| C16—H16•••S1 | 0.95 | 2.86 | 3.2088(1) | 102.7 | S(5) |
| C7—H7•••Cg(C3) iii | 0.95 | 2.97 | 3.8190(1) | 148.8 | C(2) |
Symmetry transformations used to generate equivalent atoms: (i) −x + 1, −y + 1, −z − 2; (ii) x + 1, y, z; (iii) x, −y + 1.5, z − 0.5.
Interactions in the studied compound. Each ring is indicated by one atom, which belongs solely to this ring. α is a dihedral angle between planes I and J, β is an angle between Cg(I)-Cg(J) vector and normal to plane I and dp is the perpendicular distance of Cg(I) on ring J plane.
| R(I)•••R(J) | d(Cg•••Cg) [Å] | α [°] | β [°] | dp [Å] |
|---|---|---|---|---|
| C3•••C3 iv | 3.6217(1) | 0 | 15.5 | 3.4908 |
| C11•••C11 v | 3.5355(1) | 0 | 22.3 | 3.2703 |
Symmetry transformations used to generate equivalent atoms: (iv) −x+1, −y+1, −z+1;(v) −x, −y+1, −z+1.
Figure 3Supramolecular dimers forming a R22(22) motif of a unitary graph set. Symmetry codes as in Table 3. Non-classic hydrogen bonds are indicated by dotted lines.
Figure 4Part of molecular packing showing a supramolecular ribbon extending along the crystallographic axis. Hydrogen bonds indicated by dotted lines.