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Intermolecular Dynamics of Aniline in Ethyl Acetate: A Raman Spectroscopy and DFT Approach

А. JumabaevDepartment of Optics and Spectroscopy Samarkand State University Samarkand UzbekistanBekzod KhudaykulovDepartment of Optics and Spectroscopy Samarkand State University Samarkand UzbekistanH. HushvaktovDepartment of Optics and Spectroscopy Samarkand State University Samarkand UzbekistanUtkirjon HolikulovDepartment of Optics and Spectroscopy Samarkand State University Samarkand UzbekistanI. DoroshenkoTaras Shevchenko National University of Kyiv Kyiv UkraineAhmad AbsanovDepartment of Optics and Spectroscopy Samarkand State University Samarkand UzbekistanNaveen KosarDepartment of Chemistry University of Management and Technology (UMT) Lahore PakistanTariq MahmoodDepartment of Chemistry COMSATS University Islamabad, Abbottabad Campus Abbottabad Pakistan
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ABSTRACT The intermolecular interactions between aniline (PhNH 2 ) and ethyl acetate (EtOAc) were investigated by using Raman spectroscopy and density functional theory (DFT) calculations. Experimental Raman spectra revealed red and blue shifts in the vibrational bands of PhNH 2 , indicating the presence of weak hydrogen bonding and van der Waals interactions with EtOAc. A prominent hydrogen bonding was observed between the NH 2 group of PhNH 2 and the carbonyl (C=O) group of EtOAc. DFT calculations were performed to support the experimental findings, showing strong agreement. Molecular electrostatic potential (MEP) maps highlighted the electrophilic nature of the NH 2 group and the nucleophilic character of the C=O group, corroborating the observed hydrogen bonding. Frontier molecular orbital (FMO) analysis revealed that the HOMO–LUMO energy gap of PhNH 2 ···(EtOAc) n ( n = 1–3) complexes decreases with increasing number of EtOAc molecules, reaching a minimum of 4.69 eV. Quantum theory of atoms in molecules (QTAIM) analysis confirmed that the complexation is primarily governed by weak hydrogen bonding and van der Waals interactions involving N‐H···O=C, H‐N···H–C, and C‐H···O=C contacts. This study provides valuable insights into solvent effects on the molecular behavior of aniline, with implications for both fundamental research and practical applications in physics and chemistry.

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