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Diphenyl, refractive indices

Ethers are unaffected by sodium and by acetyl (or benzoyl) chloride. Both the purely aliphatic ethers e.g., di-n-butyl ether (C4H, )30 and the mixed aliphatic - aromatic ethers (e.g., anisole C3HSOCH3) are encountered in Solubility Group V the purely aromatic ethers e.g., diphenyl ether (C,Hj)20 are generally insoluble in concentrated sulphuric acid and are found in Solubility Group VI. The purely aliphatic ethers are very inert and their final identification may, of necessity, depend upon their physical properties (b.p., density and/or refractive index). Ethers do, however, suffer fission when heated with excess of 67 per cent, hydriodic acid, but the reaction is generally only of value for the characterisation of symmetrical ethers (R = R ) ... [Pg.1067]

A vigorously stirred suspension of 0.2 to 1 mole of sodium amide in 200 ml of xylene, in which were dissolved 0.1 mole of a,a-diphenyl-7-hexamethyleneimino butyronitrile was boiled for 12 hours. Thereupon the excess of sodium amide was decomposed with water and the xylene layer was separated, washed with water and extracted with hydrochloric acid. This acidic extract was made strongly alkaline with concentrated lye and the separated base was extracted with ether. After drying, the ether was evaporated and the l,l-diphenyl-3-hexamethyleneimino propane distilled in vacuo. The boiling point was 170-174°C/1 mm, the refractive index nD20 = 1.56 36, and the density d420 = 1.009. From the oil obtained several acid additions and quaternary ammonium salts can be obtained by reaction with acids containing a non-toxic anion or esters thereof. The hydrochloric acid salt, for instance, melts at 189-192°C, the methiodide at 174-177°C under decomposition. [Pg.2909]

The R1 values obtained for such phenylethynyl substituted siloxanes are higher then that reported for traditional aromatic-based systems [9] or the phenol modified ones (1.50-1.53) [10]. The synthesis of high refractive index (methyl)(diphenyle thenyl)-dichlorosilane via hydrosilylation was also described [1]. Such monomer was later hydrolyzed and condensed into silicone fluid. Similar process was also presented, applying silylative coupling process in the synthesis of an analogous (methyl)(phenylethenyl)diethoxysilane [11], so the two reactions shall be discussed in the following section. [Pg.155]

On the other hand, the value, which represents the highest bandwidth, shifted to around 2.4 because of profile dispersion, as discussed above. The dopant used in all the GI POFs shown in Figure 3.2 was diphenyl sulfide, and all the GI POFs had NAs of 0.20. This result indicates that the bandwidth characteristics are strongly influenced by the profile dispersion even if the refractive index profile deviates greatly from the ideal one. [Pg.36]


See other pages where Diphenyl, refractive indices is mentioned: [Pg.1067]    [Pg.526]    [Pg.406]    [Pg.31]    [Pg.406]    [Pg.81]    [Pg.267]    [Pg.198]    [Pg.5048]    [Pg.149]    [Pg.44]    [Pg.64]    [Pg.91]    [Pg.105]    [Pg.150]    [Pg.18]    [Pg.346]    [Pg.14]   
See also in sourсe #XX -- [ Pg.314 ]




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