Metal nitrosyl complexMetal nitrosyl complexes are complexes that contain nitric oxide, NO, bonded to a transition metal. Many kinds of nitrosyl complexes are known, which vary both in structure and coligand. Most complexes containing the NO ligand can be viewed as derivatives of the nitrosyl cation, NO+. The nitrosyl cation is isoelectronic with carbon monoxide, thus the bonding between a nitrosyl ligand and a metal follows the same principles as the bonding in carbonyl complexes.
Radiocontrast agentRadiocontrast agents are substances used to enhance the visibility of internal structures in X-ray-based imaging techniques such as computed tomography (contrast CT), projectional radiography, and fluoroscopy. Radiocontrast agents are typically iodine, or more rarely barium sulfate. The contrast agents absorb external X-rays, resulting in decreased exposure on the X-ray detector. This is different from radiopharmaceuticals used in nuclear medicine which emit radiation.
Tetradentate ligandIn chemistry, tetradentate ligands are ligands that bind four donor atoms to a central atom to form a coordination complex. This number of donor atoms that bind is called denticity and is a method of classifying ligands. Tetradentate ligands are common in nature in the form of chlorophyll, which has a core ligand called chlorin, and heme, which has a core ligand called porphyrin. They are responsible for the colour observed in plants and humans. Phthalocyanine is an artificial macrocyclic tetradentate ligand that is used to make blue and green pigments.
Complexe aquaredresse=.67|vignette|Exemple de complexe aqua octaédrique. En chimie de coordination, un complexe aqua est un complexe de coordination homoleptique formé d'un ion métallique et de molécules d'eau coordonnées comme ligands. Ces complexes sont l'espèce prédominante des solutions aqueuses de nombreux sels métalliques tels que les nitrates, sulfates et perchlorates. Ils ont pour formule générale . Leurs propriétés sous-tendent de nombreux aspects de la chimie environnementale, biologique et industrielle.
Metal-phosphine complexA metal-phosphine complex is a coordination complex containing one or more phosphine ligands. Almost always, the phosphine is an organophosphine of the type R3P (R = alkyl, aryl). Metal phosphine complexes are useful in homogeneous catalysis. Prominent examples of metal phosphine complexes include Wilkinson's catalyst (Rh(PPh3)3Cl), Grubbs' catalyst, and tetrakis(triphenylphosphine)palladium(0). Many metal phosphine complexes are prepared by reactions of metal halides with preformed phosphines.
MétalEn chimie, les métaux sont des matériaux dont les atomes sont unis par des liaisons métalliques. Il s'agit de corps simples ou d'alliages le plus souvent durs, opaques, brillants, bons conducteurs de la chaleur et de l'électricité. Ils sont généralement malléables, c'est-à-dire qu'ils peuvent être martelés ou pressés pour leur faire changer de forme sans les fissurer, ni les briser. De nombreuses substances qui ne sont pas classées comme métalliques à pression atmosphérique peuvent acquérir des propriétés métalliques lorsqu'elles sont soumises à des pressions élevées.
Metal ions in aqueous solutionA metal ion in aqueous solution or aqua ion is a cation, dissolved in water, of chemical formula [M(H2O)n]z+. The solvation number, n, determined by a variety of experimental methods is 4 for Li+ and Be2+ and 6 for most elements in periods 3 and 4 of the periodic table. Lanthanide and actinide aqua ions have higher solvation numbers (often 8 to 9), with the highest known being 11 for Ac3+. The strength of the bonds between the metal ion and water molecules in the primary solvation shell increases with the electrical charge, z, on the metal ion and decreases as its ionic radius, r, increases.
Ionvignette| Tableau périodique avec quelques atomes en lien avec leur forme ionique la plus répandue. La charge des ions indiqués (sauf H) a comme logique d'avoir la même structure électronique que le gaz noble (cadre rouge) le plus proche. Un ion est un atome ou un groupe d'atomes portant une charge électrique, parce que son nombre d'électrons est différent de son nombre de protons. On distingue deux grandes catégories d'ions : les cations, chargés positivement, et les anions, chargés négativement.
Magnetic particle imagingMagnetic particle imaging (MPI) is an emerging non-invasive tomographic technique that directly detects superparamagnetic nanoparticle tracers. The technology has potential applications in diagnostic imaging and material science. Currently, it is used in medical research to measure the 3-D location and concentration of nanoparticles. Imaging does not use ionizing radiation and can produce a signal at any depth within the body. MPI was first conceived in 2001 by scientists working at the Royal Philips Research lab in Hamburg.