Structural characterization, theoretical, and antibacterial activity study of halogen-η3-allylpalladium(II) complexes incorporating 2-, 3- and 4-pyridyl-methylen-4-methylumbelliferone esters

IF 2.4 3区 化学 Q2 CHEMISTRY, INORGANIC & NUCLEAR
Willyfredo Fragoso–Soto , Diego Martínez-Otero , Irais Sánchez-Ortega , Julián Cruz–Borbolla , José Manuel Vásquez-Pérez , Simplicio González–Montiel
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引用次数: 0

Abstract

A series of 2-, 3- and 4-pyridyl-methylen-4-methylumbelliferone esters ligands (13) and their chloro- and bromo-η3-allylpalladium(II) complexes (Pd1Pd6) were designed, synthetized, and characterized. Solution-phase studies by 1H and 13C NMR spectroscopy of Pd1Pd6 revealed the presence of the allyl fragment which suggested the coordination of the ligands (13) towards Pd(II). GIAO/DFT studies were performed to predict the molecular structures of Pd1Pd6 by comparing the experimental and theoretical 1H and 13C NMR chemical shifts. The molecular structure of 1, 1a, 2, 3, Pd1 and Pd4 was determined by X-ray crystallographic analysis. The molecular structure of Pd1 and Pd4 reveals that 2-pyridyl-methylen-4-methylumbelliferone ester ligand (1) is coordinated to the palladium (II) center via a monodentate fashion through the nitrogen atom of the pyridinyl fragment and allyl group is binding via a η3 fashion in an overall five-fold coordination geometry completed with a halogen atom (chloro in Pd1 and bromo in Pd4, respectively). The crystal packing is stabilized by a variety of weak intermolecular conventional and non-conventional interactions involving CH•••O/N/Hal hydrogen bonds, π•••π, lone pair•••π and CH•••π interactions, which have been analyzed by Hirshfeld surface analysis. All halogen-η3-allylpalladium(II) complexes displayed potential activities against both Gram-positive (Listeria monocytogenes and Staphylococcus aureus) and Gram-negative (Escherichia coli and Salmonella spp.)

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来源期刊
Polyhedron
Polyhedron 化学-晶体学
CiteScore
4.90
自引率
7.70%
发文量
515
审稿时长
2 months
期刊介绍: Polyhedron publishes original, fundamental, experimental and theoretical work of the highest quality in all the major areas of inorganic chemistry. This includes synthetic chemistry, coordination chemistry, organometallic chemistry, bioinorganic chemistry, and solid-state and materials chemistry. Papers should be significant pieces of work, and all new compounds must be appropriately characterized. The inclusion of single-crystal X-ray structural data is strongly encouraged, but papers reporting only the X-ray structure determination of a single compound will usually not be considered. Papers on solid-state or materials chemistry will be expected to have a significant molecular chemistry component (such as the synthesis and characterization of the molecular precursors and/or a systematic study of the use of different precursors or reaction conditions) or demonstrate a cutting-edge application (for example inorganic materials for energy applications). Papers dealing only with stability constants are not considered.
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