Investigations on the growth and antibacterial behaviour of bioactive creatininium hydrogen bromide (CRBr) single crystal

The major aim is to synthesize a creatininium hydrogen bromide (CRBr) single crystal through a slow evaporation technique, and its antibacterial activity. According to Single Crystal X-ray Diffraction (SXRD) analysis, the generated crystal belongs to monoclinic structure and centrosymmetric space gr...

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Main Authors: Monisha S S, Jeslin Sunitha bai S, Sindhusha S, Marshan Robert H
Format: Article
Language:English
Published: Elsevier 2024-06-01
Series:Chemical Physics Impact
Subjects:
Online Access:http://www.sciencedirect.com/science/article/pii/S266702242400080X
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author Monisha S S
Jeslin Sunitha bai S
Sindhusha S
Marshan Robert H
author_facet Monisha S S
Jeslin Sunitha bai S
Sindhusha S
Marshan Robert H
author_sort Monisha S S
collection DOAJ
description The major aim is to synthesize a creatininium hydrogen bromide (CRBr) single crystal through a slow evaporation technique, and its antibacterial activity. According to Single Crystal X-ray Diffraction (SXRD) analysis, the generated crystal belongs to monoclinic structure and centrosymmetric space group P21/n. The optimized structural parameters explain the structural stability with NH…O, CH…O, and OH…O interactions. To verify the existence of intermolecular interactions, Hirshfeld surface analysis of a grown-up single crystal was carried out and that shows the stable nature of the molecule. Intermolecular and intramolecular hydrogen bonding, intermolecular charge transfer and delocalization of electron density can all be studied effectively by Natural Bond Orbital (NBO) analysis. In addition to examining the functional groups, the vibrational analysis gives the absorption peaks and bands associated with the formed crystal. The generated crystal has thermal stability up to 200 °C according to TG/DTA analysis. The material's electronic transition was determined by analyzing the UV–visible absorbance spectrum, showing an optical band gap of 4.2 eV and a lower cut-off wavelength of 265 nm. The charge transfer within the molecule has been elucidated using frontier molecular orbital analysis that shows its antibacterial properties. Molecular electrostatic surface analysis shows that excellent ICT interactions exist in the crystal lattice, where the positive potential is scattered throughout the creatinine portion and the negative region is dispersed on the bromine atom. Molecular docking has been used to examine the compound's antibacterial properties. In addition, the generated compound is tested for its in vitro antibacterial activity against several bacterial strains, including Escherichia coli, Pseudomonas aeruginosa, Serratia marcescens, Bacillus cereus, and Staphylococcus aureus. The above findings demonstrated the remarkable antibacterial effectiveness of the compound under study.
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spelling doaj.art-09ea8041eb3e4c4b9e5360ee6230e48b2024-02-25T04:36:34ZengElsevierChemical Physics Impact2667-02242024-06-018100536Investigations on the growth and antibacterial behaviour of bioactive creatininium hydrogen bromide (CRBr) single crystalMonisha S S0Jeslin Sunitha bai S1Sindhusha S2Marshan Robert H3Department of Physics & Research Centre, Nesamony Memorial Christian College, Marthandam 629165, Tamil Nadu, IndiaDepartment of Physics & Research Centre, Nesamony Memorial Christian College, Marthandam 629165, Tamil Nadu, India; Corresponding author.Department of Physics & Research Centre, Nesamony Memorial Christian College, Marthandam 629165, Tamil Nadu, IndiaDepartment of Physics, Dr. Ambedkar Government Arts College Vyasarpadi, Chennai, Tamil Nadu, IndiaThe major aim is to synthesize a creatininium hydrogen bromide (CRBr) single crystal through a slow evaporation technique, and its antibacterial activity. According to Single Crystal X-ray Diffraction (SXRD) analysis, the generated crystal belongs to monoclinic structure and centrosymmetric space group P21/n. The optimized structural parameters explain the structural stability with NH…O, CH…O, and OH…O interactions. To verify the existence of intermolecular interactions, Hirshfeld surface analysis of a grown-up single crystal was carried out and that shows the stable nature of the molecule. Intermolecular and intramolecular hydrogen bonding, intermolecular charge transfer and delocalization of electron density can all be studied effectively by Natural Bond Orbital (NBO) analysis. In addition to examining the functional groups, the vibrational analysis gives the absorption peaks and bands associated with the formed crystal. The generated crystal has thermal stability up to 200 °C according to TG/DTA analysis. The material's electronic transition was determined by analyzing the UV–visible absorbance spectrum, showing an optical band gap of 4.2 eV and a lower cut-off wavelength of 265 nm. The charge transfer within the molecule has been elucidated using frontier molecular orbital analysis that shows its antibacterial properties. Molecular electrostatic surface analysis shows that excellent ICT interactions exist in the crystal lattice, where the positive potential is scattered throughout the creatinine portion and the negative region is dispersed on the bromine atom. Molecular docking has been used to examine the compound's antibacterial properties. In addition, the generated compound is tested for its in vitro antibacterial activity against several bacterial strains, including Escherichia coli, Pseudomonas aeruginosa, Serratia marcescens, Bacillus cereus, and Staphylococcus aureus. The above findings demonstrated the remarkable antibacterial effectiveness of the compound under study.http://www.sciencedirect.com/science/article/pii/S266702242400080XCrystal growthHirshfeldComputational techniqueFTIRMolecular docking
spellingShingle Monisha S S
Jeslin Sunitha bai S
Sindhusha S
Marshan Robert H
Investigations on the growth and antibacterial behaviour of bioactive creatininium hydrogen bromide (CRBr) single crystal
Chemical Physics Impact
Crystal growth
Hirshfeld
Computational technique
FTIR
Molecular docking
title Investigations on the growth and antibacterial behaviour of bioactive creatininium hydrogen bromide (CRBr) single crystal
title_full Investigations on the growth and antibacterial behaviour of bioactive creatininium hydrogen bromide (CRBr) single crystal
title_fullStr Investigations on the growth and antibacterial behaviour of bioactive creatininium hydrogen bromide (CRBr) single crystal
title_full_unstemmed Investigations on the growth and antibacterial behaviour of bioactive creatininium hydrogen bromide (CRBr) single crystal
title_short Investigations on the growth and antibacterial behaviour of bioactive creatininium hydrogen bromide (CRBr) single crystal
title_sort investigations on the growth and antibacterial behaviour of bioactive creatininium hydrogen bromide crbr single crystal
topic Crystal growth
Hirshfeld
Computational technique
FTIR
Molecular docking
url http://www.sciencedirect.com/science/article/pii/S266702242400080X
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