Synthesis, characterization, and computational study of copper bipyridine complex [Cu (C18H24N2) (NO3)2] to explore its functional properties

Author:

Alarfaji Saleh S.1,Hussain Sajjad2,Al-Sehemi Abdullah G.1,Muhammad Shabbir3ORCID,Khan Islam Ullah4,Rabbani Faiz5,Gilani Mazhar Amjad6,Ullah Hamid7

Affiliation:

1. Department of Chemistry , College of Science, King Khalid University , Abha 61413, P.O. Box 9004 , Saudi Arabia

2. School of Chemistry , Faculty of Basic Sciences and Mathematics, Minhaj University , Lahore , Pakistan

3. Department of Physics , College of Science, King Khalid University , P.O. Box 9004 , Abha 61413 , Saudi Arabia

4. Department of Chemistry , University of Mianwali , Mianwali 42200 , Pakistan

5. Department of Environmental Sciences , COMSATS University Islamabad, Vehari Campus , Vehari , Pakistan

6. Department of Chemistry , COMSATS University, Lahore Campus , Lahore , Pakistan

7. Department of Chemistry , Balochistan University of Information Technology Engineering and Management Sciences (BUITEMS) , Quetta 87300 , Pakistan

Abstract

Abstract In the present study, copper (II) complex of 4, 4′-di-tert-butyl-2,2′-bipyridine [Cu (C18H24N2) (NO3)2], 1 is investigated through its synthesis and characterization using elemental analysis technique, infra-red spectroscopy, and single-crystal analysis. The compound 1 crystallizes in orthorhombic space group P212121. The copper atom in the mononuclear complex is hexa coordinated through two nitrogen and four oxygen atoms from bipyridine ligand and nitrate ligands. The thermal analysis depicts the stability of the entitled compound up to 170 °C, and the decomposition takes place in different steps between 170 and 1000 °C. Furthermore, quantum chemical techniques are used to study optoelectronic, nonlinear optical, and therapeutic bioactivity. The values of isotropic and anisotropic linear polarizabilities of compound 1 are calculated as 41.65 × 10−24 and 23.02 × 10−24 esu, respectively. Likewise, the static hyperpolarizability is calculated as 47.92 × 10−36 esu using M06 functional compared with para-nitroaniline (p-NA) and found several times larger than p-NA. Furthermore, the antiviral potential of compound 1 is studied using molecular docking technique where intermolecular interactions are checked between the entitled compound and two crucial proteins of SARS-CoV-2 (COVID-19). Our investigation indicated that compound 1 interacts more vigorously to spike protein than main protease (MPro) due to its better binding energy of −9.60 kcal/mol compared with −9.10 kcal/mol of MPro. Our current study anticipated that the above-entitled coordination complexes could be potential candidates for optoelectronic properties and their biological activity.

Publisher

Walter de Gruyter GmbH

Subject

General Biochemistry, Genetics and Molecular Biology

Reference43 articles.

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2. Muhammad, S, Nakano, M. Quantum chemical prospective of open-shell carbon nanomaterials for nonlinear optical applications. In: Chemical functionalization of carbon nanomaterials: chemistry and applications. United States: CRC Press; 2015:807–21 pp.

3. Bloembergen, N. Nonlinear optics: past, present, and future. In: IEEE Journal of Selected Topics in Quantum Electronics. New York City, USA: IEEE Journal; 1992, 6:876–880 pp. https://doi.org/10.1109/2944.902137.

4. Mohammed, AA. Accurate calculations of nonlinear optical properties using finite field methods (Doctoral dissertation). Canada: McMaster University Libraries; 2017. http://hdl.handle.net/11375/22082.

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