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Khansaa Hussein

Publications and source records attributed to Khansaa Hussein.

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Theoretical Study of C36 and O@C36 Fullerene Isomers with (C1, C2, Cs, D2, D3h) symmetries: Geometry Optimization, Electrical Properties and Spectroscopic Analysis

In this study, we conducted a theoretical analysis of specific C36 and O@C36 Fullerene isomers, namely those with (D3h, C1, Cs, C2, D2) symmetries, in the gaseous phase using the DFT method at B3LYP/6-31G* level. We studied geometry optimizations, relative stability, atomization energies, Fermi energy, energy gap, electronic properties, electric dipole moment, polarizabilities, and thermodynamic analysis, along with IR and NMR spectra. Consistently, our findings revealed distinct properties and characteristics among different C36 fullerene isomers. The energetic order of C36 fullerene isomers was established as C36-D3h < C36-C1 < C36-Cs < C36-C2 < C36-D2, a trend unaffected by the encapsulation of oxygen. Notably, the D2 isomer displayed the smallest energy gap, indicating higher electrical conductivity compared to other isomers, while it exhibited the largest gap after encapsulation. Furthermore, we observed that the C1 (D2) isomer exhibited the largest (smallest) Electric dipole moment among the studied C36 isomers, whereas the C2 (D2) isomer demonstrated the largest Electric dipole moment among the O@C36 isomers studied. The encapsulation of oxygen in C36 isomers influenced their properties, including alterations in electronic properties, IR, and NMR chemical shifts. A detailed analysis of BSSE corrections showed the tininess of their impact on the analyzed observables, such that uncorrected and BSSE-corrected calculations led to nearly identical results, confirming the robustness and reliability of the B3LYP/6-31G* approach used in this work and, eventually, in other large and rigid fullerenes systems.

physics.chem-ph

Comparison between PBE-D3, B3LYP, B3LYP-D3 and MP2 Methods for quantum mechanical calculations of polarizability and IR-NMR spectra in C24 isomers, including a novel isomer with D2d symmetry

We perform a comprehensive theoretical analysis of C24 isomers in the gaseous phase using the PBE-D3-cc-pVTZ,B3LYP-cc-pVTZ,B3LYP-D3-cc-pVTZ , MP2-6-31G methods.We consider the basis set cc-pVTZ for the MP2 method , carry out optimized (single point) calculations in three isomers (remaining two isomers when convergence was too time consuming) in order to reveal the potentiality of the method.We covered many properties,including geometry optimizations,chemical stability,polarizabilities,nuclear screening constants,Fermi(FE),gap(GE) , atomization energies(AE),thermodynamic analysis,reactivity index,IR, NMR.Calculations were performed for ring (D12h), sheet (D6h) , two cage (D6d,Oh) configurations. We proposed a new structure, the bracelet (D2d) arrangement, stable according to the PBE, B3LYP,B3LYPD3 methods, but a transition state by the MP2 method. Results consistently indicated the D6h isomer is the most stable one among the C24 isomers studied, while the D2d isomer was found to be the least stable.For the gap energy(GE), the B3LYP,B3LYP-D3 methods yielded higher values compared to the PBEs,with an average DFT (PBE, B3LYP) GE of 1.89eV,whereas the MP2 method showed a substantially higher GE value of 7.6 eV, representing an increase of approximately 0.75.The polarizabilities of the C24 isomers were found to be overestimated by the PBE,B3LYP,B3LYP-D3 methods when compared to the corresponding MP2 values.The PBE-D3 method produced higher polarizabilities for the C24 isomers in comparison to the B3LYP, B3LYP-D3, MP2 methods.The investigation confirms that the Oh (D12h) isomer has the smallest (largest) polarizability.The polarizability of D12h is notably affected by the selected DFT method, while that of Oh displays lower sensitivity but shares similarities with D6d.

physics.chem-ph