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Iodine compounds general classes

Iodides. Iodides range from the completely ionic such as potassium iodide [7681-11-0] KI, to the covalent such as titanium tetraiodide [7720-83-4J, Til. Commercially, iodides are the most important class of iodine compounds. In general, these are very soluble in water and some are hygroscopic. However, some iodides such as the cuprous, lead, silver and mercurous, are insoluble. [Pg.365]

Chapter 7 describes nondestructive (reversible) detection of snbstances by using iodine or water. Iodine can detect a wide variety of chemical classes as brown to yellow-brown zones on a preparative layer after exposnre to its vapor or dipping into a 1% iodine in chloroform solution. Another general, nondestmctive technique for detection of hydrophobic compounds in PLC nses water as a spray reagent [12-14]. [Pg.179]

This brings us to a class of compounds too often overlooked in the discussion of simple ionic compounds the transition metal halides. In general, these compounds (except fluorides) crystallize in structures that are hard to reconcile with the structures of simple ionic compounds seen previously (Figs. 4.1-4.3). For example, consider the cadmium iodide structure (Fig. 7.8). It is true that the cadmium atoms occupy octahedral holes in a hexagonal closest packed structure of iodine atoms, but in a definite layered structure that can be described accurately only in terms of covalent bonding and infinite layer molecules. [Pg.142]

Epoxidized natural oils make up a class of useful, extraction- resistant plasticizers which also serve to provide thermal stability to PVC compounds. These plasticizers are generally based on soybean, linseed, and other tail-oil By acids. They are converted into plasticizers ty oxidizing the oils carbon-carbon double bonds to epoxide groups, as shown below. The iodine numbers of tail-oils used to make epoxides are between 100 and 200. [Pg.389]

Dilithium tetrachlorocuprate is recommended as an additive for cross coupling of Grignard compounds with tosylates even allylic and benzylic acetates give good yields . a-Methylene-ketones, -carboxylic acids and -lactones have been prepared via sulfides and sulfoxides. A convenient and general synthesis of acetylene derivatives from boranes via the reaction of iodine with lithium 1-alkynyltriorganoborates has been published ar-Nitrostyrenes can be easily obtained by a Wittig synthesis with formaldehyde in an aqueous medium . A new synthesis of unsym. ketones by reaction of dialkyldiloroboranes with lithium aldimines has recently been published . Metallo aldimines have also served for the synthesis of a variety of other compound classes such as a-hydroxyketones, a-keto acids, nitriles, and for the asym. synthesis of a-amino acids . Polycondensations of malononitriles with benzylic chlorides have been carried out quantitatively under mild conditions in dimethyl sulfoxide with triethylamine as acid acceptor . Carbonyl compounds can react with dibromoacetonitrile to yield a-bromo esters with additional carbon atom . ... [Pg.10]


See other pages where Iodine compounds general classes is mentioned: [Pg.466]    [Pg.434]    [Pg.1460]    [Pg.4]    [Pg.9]    [Pg.12]    [Pg.13]    [Pg.21]    [Pg.145]    [Pg.183]    [Pg.479]    [Pg.54]    [Pg.4]    [Pg.7]    [Pg.214]    [Pg.2494]    [Pg.163]    [Pg.214]    [Pg.145]    [Pg.168]    [Pg.165]    [Pg.2]    [Pg.301]    [Pg.341]    [Pg.158]    [Pg.341]    [Pg.310]    [Pg.165]   
See also in sourсe #XX -- [ Pg.4 , Pg.6 ]




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Compounds classes

Iodinated compounds

Iodine compounds

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