Abstract
In this study, we report about the relativistic effects on the aromaticity of borazine, B 3 N 3 H 6 , and their halogenated derivatives (B 3 N 3 F 6 , B 3 N 3 Cl 6 , B 3 N 3 Br 6 , B 3 N 3 I 6 , and B 3 N 3 At 6 ), via the magnetically-induced current density method. All-electron density functional theory calculations were carried out using the four-component Dirac-Coulomb hamiltonian, including scalar and spin-orbit relativistic effects. Ring current strengths were obtained by numerical integration over the current flow. These values were compared to the spin-free (scalar relativistic) and nonrelativistic values, to assess the corresponding contributions to aromaticity. It was found that in B 3 N 3 I 6 and B 3 N 3 At 6 there exists a significant spin-orbit influence, in line with the expected relativistic effects associated to the heavy elements, iodine, and astatine. Borazine, B 3 N 3 H 6 , is known to be slightly aromatic, but much less aromatic than benzene. The application of an external magnetic field induces a current density, that accounts for the delocalization and mobility of electrons in a molecule. Using this theoretical method, the aromaticity of the derivatives B 3 N 3 X 6 (X = H, F, Cl, Br, I, At) was investigated. The inclusion of heavy elements requires a relativistic treatment where the spin-orbit coupling must be included. The figure shows the three-dimensional pathways of the current density flow in B 3 N 3 At 6 .
| Original language | English |
|---|---|
| Article number | e25859 |
| Journal | International Journal of Quantum Chemistry |
| Volume | 119 |
| Issue number | 11 |
| DOIs | |
| State | Published - 5 Jun 2019 |
Keywords
- aromaticity
- magnetically-induced current density
- relativistic effects
- spin-orbit
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