Six ferrocenyl imidazole derivatives substituted with -Cl, -NO and -CH on the 2-position of the 1H-imidazole ring have been synthesized. Of the six compounds, the di-substituted ferrocenes, i.e. compounds (1,1'-ferrocenylmethyl(2-chloroimidazole)), (1,1'-ferrocenyl(2-nitroimidazole)), and (1,1'-ferrocenylmethyl(2-methylimidazole)) are reported for the first time. The structure-property relationships of compounds , and were investigated by means of UV-visible, FTIR, H-NMR, C-NMR spectroscopy and electrochemical studies. UV-visible analysis in acetonitrile showed that the π -π* band of compounds (1-ferrocenylmethyl(2-nitroimidazole)) and appeared at longer wavelength compared to (1-ferrocenylmethyl(2-chloroimidazole)), (1-ferrocenylmethyl(2-methylimidazole)), and . This phenomenon is due to the different electronics around the imidazole moieties. In cyclic voltammetry analysis, all compounds exhibited a quasi-reversible redox wave for the ferrocenyl and imidazole moieties. Density functional theoretical (DFT) calculations with the B3LYP/6-311+G(d) basis set were performed on compounds -, and the calculated HUMO-LUMO band gap energies correlated with those obtained from electrochemical and spectroscopic data. The X-ray crystallographic analysis highlighted the effect of electron-withdrawing and electron-donating substituents on the conformation of the cyclopentadienyl rings attached to the ferrocenyl moiety.
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http://dx.doi.org/10.1016/j.heliyon.2019.e02580 | DOI Listing |
Chem Rec
July 2024
Catalysis and Fine Chemicals Department, CSIR-Indian Institute of Chemical Technology, Hyderabad, Uppal Road, Tarnaka, Hyderabad, 500007, Telangana, India.
The medicinal chemistry of ferrocene has gained its momentum after the discovery of biological activities of ferrocifen and ferroquine. These ferrocenyl drugs have been designed by replacing the aromatic moiety of the organic drugs, tamoxifen and chloroquine respectively, with a ferrocenyl unit. The promising biological activities of these ferrocenyl drugs have paved a path to explore the medicinal applications of several ferrocenyl conjugates.
View Article and Find Full Text PDFDalton Trans
July 2024
Department of Inorganic Chemistry, Faculty of Science, Charles University, Hlavova 2030, 128 40 Prague, Czech Republic.
Ferrocene-substituted carbenes have emerged as attractive, redox-active ligands. However, among the compounds studied to date, ferrocenylated 1,2,4-triazol-5-ylidenes, which are closely related to the archetypal imidazol-2-ylidenes, are still unknown. Here, we demonstrate that the triazolium salt [CHN(Me)NCHN(Fc)]I (2; Fc = ferrocenyl), obtained by alkylation of 4-ferrocenyl-4-1,2,4-triazole (1) with MeI, reacts selectively with metal alkoxide/hydroxide precursors [(cod)Rh(OMe)] and [(IPr)Au(OH)] (cod = cycloocta-1,5-diene, IPr = 1,3-bis(2,6-diisopropylphenyl)imidazol-2-ylidene) to produce the ferrocene-substituted 1,2,4-triazol-5-ylidene complexes [(cod)RhI{N(Me)NCHN(Fc)}] and [(IPr)Au{N(Me)NCHN(Fc)}]I in good yields.
View Article and Find Full Text PDFDalton Trans
March 2023
Dipartimento di Scienze Chimiche, Biologiche, Farmaceutiche ed Ambientali, Università di Messina, Viale Ferdinando Stagno d'Alcontres 31, 98166 Messina, Italy.
A potentiometric study on the interactions of L-carnosine (CAR) (2-[(3-aminopropanoyl)amino]-3-(1-imidazol-5-yl)propanoic acid) with two toxic metal cations, Hg and Cd, is reported here. The elucidation of the metal (M)-CAR interactions in aqueous solution highlighted the speciation model for each system, the dependence of the formation constants of the complex species on ionic strength (0.15 ≤ /mol L ≤ 1) and temperature (288.
View Article and Find Full Text PDFLuminescence
July 2023
Department of Chemistry, National Institute of Technology Uttarakhand, Srinagar, Uttarakhand, India.
Design, synthesis, characterization, and ion detection studies of two ferrocene-appended Schiff bases namely N-(2-[ferrocenylamino]ethyl)-5-nitropyridin-2-amine (1) and ferrocenylamino-1H-imidazole-4-carboxamide (2) been reported. Both the chemosensors have been thoroughly characterized using Fourier transfer infrared, H and C nuclear magnetic resonance, high resolution mass spectrometry, and ultraviolet/visible (UV/visible) and fluorescence spectral techniques. Probes 1 and 2 were designed with the aim of appending the ferrocenyl group with pyridine ring having an amine substitution (for 1) and imidazole ring with an amide substitution (for 2).
View Article and Find Full Text PDFJ Biomol Struct Dyn
October 2021
Department of Chemistry, The Maharaja Sayajirao University of Baroda, Vadodara, India.
Four new ferrocenyl substituted thiosemicarbazone ligands (-) and their corresponding binuclear ruthenium(II) arene complexes of the general type [(η- cym)(L)Ru(μ-im)Ru(L)(η--cym)]Cl (-) and [(η- cym)(L)Ru(μ-azpy)Ru(L)(η--cym)]Cl (-) (cym = cymene, im = imidazole, azpy = 4,4'-azopyridine) have been synthesized and characterized. The structures of the complexes were established through DFT calculations and geometry optimization. The interactions of the binuclear complexes with DNA were investigated by absorption, emission and viscosity studies which indicated that the complexes bind to DNA intercalation.
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