| Literature DB >> 33808112 |
Mohamed A El-Atawy1,2, Magdi M Naoum3, Salma A Al-Zahrani4, Hoda A Ahmed3.
Abstract
Two new homologues series, based on two rings of the azomethine central group bearing the terminal alkoxy group of various chain lengths, were prepared. The alkoxy chain length varied between 6 and 16 carbons. The other terminal wing in the first series was the F atom, and the compound is named N-4-florobenzylidene-4-(alkoxy)benzenamine (In). The second group of compounds included a lateral NO2 substituent in addition to the terminal F atom, named N-(4-fluoro-3-nitrobenzylidene)-4-(alkyloxy)aniline (IIn). Mesomorphic and optical properties were carried out via differential scanning calorimetry (DSC) and polarized optical microscopy (POM). Elemental analyses, FT-IR, and NMR spectroscopy were carried out to elucidate the molecular structures of the synthesized groups. Mesomorphic investigations indicated that all the synthesized homologues (In) were monomorphic, possessing the smectic A (SmA) phase monotropically, while the second group (IIn) members were non-mesomorphic. The experimental data indicated that the formation of the mesophase is affected by the protrusion of the lateral nitro group. The disruption of the mesophase in the second group was attributed to the increase of its molecular width, which affects its lateral intermolecular interactions. The computational simulations were in agreement with the experimental data. On the other hand, the location of NO2 group within the molecular geometry increased the melting temperature of the molecule, and thus, affected their thermal and physical properties. By discussing the estimated parameters, it was found that the molecular architecture, the dipole moment, and the polarizability of the investigated compounds are highly affected by the electronic nature and position of the terminal and lateral substituents as well as their volumes.Entities:
Keywords: DFT; azomethine liquid crystals; geometrical structure; lateral nitro-substituent; mesophase stability
Year: 2021 PMID: 33808112 PMCID: PMC8036588 DOI: 10.3390/molecules26071927
Source DB: PubMed Journal: Molecules ISSN: 1420-3049 Impact factor: 4.411
Scheme 1Synthesized groups In and IIn.
Phase transition temperatures (°C), enthalpy of transition ΔH, kJ/mole, and mesophase temperature range, ΔT, for groups N-4-florobenzylidene-4-(alkoxy)benzenamine (In) and N-(4-fluoro-3-nitrobenzylidene)-4-(alkyloxy)aniline (IIn).
| Cycle | Upon Heating | Upon Cooling | |||||
|---|---|---|---|---|---|---|---|
| Comp. |
| Δ |
| Δ |
| Δ | Δ |
|
| 84.2 | 35.64 | 66.9 | 2.15 | 61.5 | 27.6 | 5.4 |
|
| 88.2 | 39.35 | 71.0 | 2.05 | 54.7 | 32.4 | 16.3 |
|
| 79.1 | 36.72 | 76.3 | 1.98 | <20.0 | - | >56.3 |
|
| 98.2 | 40.74 | - | - | - | - | - |
|
| 88.7 | 38.27 | - | - | - | - | - |
|
| 74.8 | 50.61 | - | - | - | - | - |
Cr-to-isotropic liquid phase (Cr-I) denotes transition from solid to the isotropic mesophase; I-smectic A (I-SmA) denotes transition from isotropic mesophase to the SmA mesophase; SmA-Cr denotes transition from SmA to the solid phase.
Figure 1Differential scanning calorimetry (DSC) thermograms of I8 and II16 derivatives upon the second heating/cooling scan with a rate of 10 °C/min.
Figure 2Polarized optical microscopy (POM) texture of SmA phase upon cooling of compound I8 at 80.0 °C, as an example.
Figure 3DSC transitions of synthesized groups (a) In and (b) IIn; the smectic A mesophase for series In was observed monotropically (upon cooling).
Figure 4Optimized structures of molecules of the investigated homologues series In and IIn, calculated at the B3LYP/6-311G** level.
DFT calculated thermal parameters using B3LYP/6-311G** method.
| Compound | ZPE | Thermal Energy | Enthalpy | Gibbs Free Energy | Entropy | Total Energy |
|---|---|---|---|---|---|---|
|
| 232.110 | 245.514 | 246.107 | 198.082 | 161.077 | −966.673 |
|
| 233.080 | 248.147 | 248.739 | 196.560 | 175.010 | −1171.136 |
|
| 268.005 | 283.060 | 283.652 | 231.671 | 174.347 | −1045.237 |
|
| 268.850 | 285.632 | 286.224 | 229.633 | 189.806 | −1249.700 |
|
| 411.206 | 433.130 | 433.723 | 364.161 | 233.314 | −1359.495 |
|
| 412.130 | 435.744 | 436.336 | 362.232 | 248.547 | −1563.957 |
EHOMO, ELUMO, ∆E, the dipole moment, and the polarizability calculated using B3LYP/6-311G** method for the present groups In and IIn.
| Compound | EHOMO | EluMO | ∆E | IE | EA | Dipole Moment (Debye) | Polarizability |
|---|---|---|---|---|---|---|---|
|
| −5.820 | −1.871 | 3.949 | 5.820 | 1.871 | 3.4343 | 253.23 |
|
| −6.185 | −3.207 | 2.978 | 6.185 | 3.207 | 8.3129 | 277.41 |
|
| −5.826 | −1.878 | 3.948 | 5.826 | 1.878 | 3.2523 | 275.53 |
|
| −6.178 | −3.224 | 2.954 | 6.178 | 3.224 | 7.2100 | 299.49 |
|
| −5.822 | −1.872 | 3.950 | 5.822 | 1.872 | 3.5361 | 372.25 |
|
| −6.177 | −3.207 | 2.970 | 6.177 | 3.207 | 8.3918 | 396.18 |
Figure 5Estimated geometry for frontier molecular orbitals (FMOs) of the investigated groups, In and IIn.
Figure 6Molecular electrostatic potentials (MEP) of groups In and IIn.
Scheme 2Synthesis of N-4-florobenzylidene-4-(alkoxy)benzenamine (In) and N-(4-fluoro-3-nitrobenzylidene)-4-(alkyloxy)aniline (IIn).