40 research outputs found

    Synthesis, Characterization, DFT Studies and Biological Activity of Ru(III), La(III) and Ce(III) Triphenylphosphine Complexes Containing 2-Aminothiazole and 2-Aminotriazole

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    In the present paper a series of triphenylphosphine complexes containing mixed ligands like 2-aminothiazole (Ath) and 2-aminotriazole (Atz) have been prepared. The complexes are of the formula MCl3((Pph(3))(Ath)(2)] and MCl3((Pph(3))(Atz)(2)], M = Ru(III), Ce(III) and La(III)]. These complexes were characterized by different spectral techniques. Additionally, the computational study has been performed using density functional theory (DFT) and the calculation is used to examine the electronic structure of the synthesized complexes. The biological activities of all the synthesized complexes were evaluated and the comparative account in properties between the triphenylphosphine metal complexes containing 2-aminothiazole and 2-aminotriazole ligands has been made. The DNA-binding property of these metal complexes was investigated using electronic absorption spectroscopy and fluorescence spectroscopy. The antibacterial and antifungal activity against bacterial species (Gram -ve bacteria: Escherichia coli, Salmonella typhi) and (Gram +ve bacteria: (Staphylococcus aureus and Bacillus subtilis) and fungi (Aspergillus niger and Candida albicans). The antioxidant study was carried out against the 2,2-diphenyl-1-picrylhydrazyl radical (DPPH center dot) which showed that the metal complexes are good antioxidant, as compared to BHT. Further, the in-silico molecular docking study was performed to predict the possible binding sites of the metal complexes

    Synthesis, characterization, electrochemistry, biological and molecular docking studies of the novel Co(II), Ni(II) and Cu(II) complexes derived from methanethiol bridged (2-((1H-benzod]imidazol-2-yl) methylthio)-1H-benzod]imidazol-6-yl)(phenyl)methanone

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    The bio-active Co(II), Ni(II) and Cu(II) complexes derived from new (2-((1H-benzod]imidazol-2-yl) methylthio)-1H-benzod]imidazol-5-yl)(phenyl)methanone were synthesized in good yield. The structure of these metal complexes have been characterized using IR, Uv-visible, mass spectra H-1 NMR, TGA and powder XRD techniques. The spectral data of the Co(II) and Ni(II) complex indicated the tri-dentate bonding mode with the ligand and that of the Cu(II) complex is in bi-dentate bonding mode. The electrocatalytic activity of the Co(II) complex was studied by cyclic voltammeter using modified GCE towards various concentration of dopamine (DA, 3,4-dihydroxyphenethylamine). The obtained I-p value linearly increased with increasing scan rates, indicating the oxidation process of dopamine (DA) which occurred by modified Co(II) complex/GCE through diffusion controlled process. The antimicrobial, antioxidant and cytotoxicity studies of the ligand and its metal complexes were performed, the obtained results showed that the complexes are more potent bio-active as compared with uncoordinated ligand. The DNA binding property of the metal complexes were performed on double strand calf thymus DNA using electronic absorption and fluorescence emission methods, in addition, photo induced DNA cleavage activity also studied on pBR322 DNA. The molecular docking of the Co(II) complex on 6-bp DNA (PDB code: 1Z3F) and C-KIT Tyrosive kinases (TRKs) (PDB code: 1t46), further confirms the inhibition ability of the metal complex. The experimental results and the drug likeness property of the metal complexes suggest the possible applications of metal complex which, could be developed as a potent drug in the near future. (C) 2020 Elsevier B.V. All rights reserved

    Microwave-Synthesized NiO as a Highly Sensitive and Selective Room-Temperature NO2 Sensor

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    In this work, we report microwave-assisted deposition of NiO for application as room-temperature NO2 sensor. The synthesis conditions are varied to arrive at the optimum film for sensing NO2. The optimum NiO film shows response of 4991% at 3 ppm NO2 at room temperature with short response and recovery times of 30 s and 45 s, respectively. X-ray diffraction reveals the cubic structure of the NiO film with slightly preferred orientation and scanning electron microscopy shows high porosity in the film, both contributing to the enhanced sensing performance. The microwave-synthesized NiO shows an order of magnitude stronger response to NO2 (3 ppm) at room temperature operation than does optimized, DC-reactive-sputtered NiO operating at 175 degrees C. To the best of our knowledge, this is the first report on room temperature detection of NO2 by a microwave-synthesized NiO film. The detection limit of the NiO film is 200 ppb with good selectivity against interfering gases. The sensor demonstrates an ultra-low power consumption of 0.2 mu W, making it suitable for solar-powered pollution-monitoring. (C) The Author(s) 2018. Published by ECS

    Hydrothermal synthesis and characterization of nanostructured nickel vanadate for supercapacitor and photocatalytic applications

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    We successfully synthesised nickel vanadate (NiVO _3 ) nanocomposite by an inexpensive hydrothermal technique. Several analytical methods have been employed to characterise the synthesised nanocomposite. The crystal structure of NiVO _3 is orthorhombic, and its crystallite size is around 10.3 nm. The NiVO _3 nanocomposite has an optical band gap of 2.62 eV from the absorption spectra analysis. At a current density of 5 Ag ^−1 , the NiVO _3 nanocomposite exhibits a specific capacitance value of 398 Fg ^−1 and a retention rate of almost 90% after 2000 cycles. Furthermore, stability studies show that at a current density of 5 Ag ^−1 , 90% of the capacitance is retained for 4000 cycles. The photocatalytic studies to break down the industrial pollutant Fast Orange Red (F-OR) dye show a 98.7% decolourization rate after 120 min of exposure to UV light irradiation. These features promote the creation of such nanocomposites for practical energy and environmental applications while providing a deeper understanding of the material’s characteristics
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