Electronic and NLO Performances of Benzohydrazide Derivatives: DFT Investigation and (RDG, AIM) Analysis

Author:

Benhalima Nadia12,Doumi Bendouma34ORCID,Kourat Oumria1,Cherif Fatima Yahia2,Daho Nour El Houda5,Chouaih Abdelkader1,Sayede Adlane6

Affiliation:

1. Laboratory of Technology and Solid Properties (LTPS), Abdelhamid Ibn Badis University — Mostaganem, 27000 Mostaganem, Algeria

2. Laboratory of Chemistry: Synthesis, Properties and Applications (LCSPA), Faculty of Sciences, University of Saida — Dr. Moulay Tahar, Saida, Algeria

3. Faculty of Sciences, Department of Physics, University of Saida — Dr. Moulay Tahar, Saida, Algeria

4. Laboratoire d’étude des Matériaux & Instrumentations Optiques, Djillali Liabès University, Sidi Bel-Abbès, Algeria

5. Laboratory of Physico-Chemical Studies, University of Saida — Dr. Moulay Tahar, Saida, Algeria

6. University of Artois, CNRS, Centrale Lille, Univ. Lille, UMR 8181 — UCCS — Unité de Catalyse et Chimie du Solide, Lens, France

Abstract

DFT calculations of ground-state hydrazine and benzohydrazide derivatives were performed by using hybrid functional B3LYP and CAMB3LYP with 6–31G (d, p) as basis set. The electric dipole moment ([Formula: see text], polarizability ([Formula: see text] and molecular first hyperpolarizability ([Formula: see text] were characterized in these compounds. The HOMO–LUMO energy gaps and the global chemical reactivity descriptors were computed by B3LYP and CAMB3LYP using 6–31G (d,p), while the excitation energies have determined by time dependent DFT (TDDFT). Besides, the stability and charge delocalization were studied by natural bond orbital analysis. Topological analyses such as atom in molecule (AIM), natural bonding orbital (NBO) and molecular electrostatic potential (MEP) have used to compute intermolecular interactions and in particular hydrogen bonds. The obtained first-order hyperpolarizabilities in the range of 1.5 × [Formula: see text] to 30.2 × [Formula: see text] esu revealed that the hydrazine and benzohydrazide derivatives have better NLO properties. The low-energy gap of 3.53 eV generates an intramolecular charge transfer, leading to the enhancement of the NLO activity in these compounds.

Publisher

World Scientific Pub Co Pte Ltd

Subject

Computational Theory and Mathematics,Physical and Theoretical Chemistry,Computer Science Applications

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