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Affinity additivity

The Ga and Ga isotopes were studied, eg, as citrate salts, for detection of tumors. Ga concentrates in bone tissues and Ga seem to have a tumor-specific affinity. Additional data are available (41,42). [Pg.164]

Carbon dioxide, water, ethane, ethylene, propane, ammonia, xenon, nitrous oxide, and fluoroform have been considered useful solvents for SEE. Carbon dioxide has so far been the most widely used as a supercritical solvent because of its convenient critical temperature, 304°K, low cost, chemical stability, nonflammability, and nontoxicity. Its polar character as a solvent is intermediate between a truly nonpolar solvent such as hexane and a weakly polar solvent. Moreover, COj also has a large molecular quadrupole. Therefore, it has some limited affinity with polar solutes. To improve its affinity, additional species are often introduced into the solvent as modifiers. For instance, methanol increases C02 s polarity, aliphatic hydrocarbons decrease it, toluene imparts aromaticity, R-2-butanol adds chirality, and tributyl phosphate enhances the solvation of metal complexes. [Pg.601]

Based on the periodic trend discussed above, Cl would be expected to have the highest electron affinity. Addition of an electron to Cl forms Cl , which has a stable noble gas electron configuration. [Pg.231]

Predicting drug-receptor binding affinity Additivity vs. non-additivity of free energies of weak interactions... [Pg.245]

Proteins often have the same high-affinity isotherms as do synthetic polymers and are also slow to equilibrate, due to many contacts with the surface. Proteins, however, have the additional complication that they can partially or completely unfold at the solid-liquid interface to expose their hydrophobic core units to a hydrophobic surface... [Pg.404]

Negative ions also have two unique thennodynainic quantities associated with them the electron affinity, EA, defined as the negative of the enthalpy change for addition of an electron to a molecule at 0 K [117. 121. 122]... [Pg.815]

Table 2.6 shows the electron affinities, for the addition of one electron to elements in Periods 2 and 3. Energy is evolved by many atoms when they accept electrons. In the cases in which energy is absorbed it will be noted that the new electron enters either a previously unoccupied orbital or a half-filled orbital thus in beryllium or magnesium the new electron enters the p orbital, and in nitrogen electron-pairing in the p orbitals is necessary. [Pg.34]

Additional gas-phase reactivity data, such as gas-phase acidities of alcohols [41], proton affinities of alcohols and ethers [41], and proton affinities of carbonyl compounds [42] could equally well be described by similar equations. [Pg.335]

Several portions of Section 4, Properties of Atoms, Radicals, and Bonds, have been significantly enlarged. For example, the entries under Ionization Energy of Molecular and Radical Species now number 740 and have an additional column with the enthalpy of formation of the ions. Likewise, the table on Electron Affinities of the Elements, Molecules, and Radicals now contains about 225 entries. The Table of Nuclides has material on additional radionuclides, their radiations, and the neutron capture cross sections. [Pg.1283]

Metallurgy. The strong affinity for oxygen and sulfur makes the rare-earth metals useflil in metallurgy (qv). Mischmetal acts as a trap for these Group 16 (VIA) elements, which are usually detrimental to the properties of steel (qv) or cast iron (qv). Resistance to high temperature oxidation and thermomechanical properties of several metals and alloys are thus significantly improved by the addition of small amounts of mischmetal or its siUcide (16,17). [Pg.547]

Other Reactions of Phospholipids. The unsaturated fatty acid groups in soybean lecithin can be halogenated. Acetic anhydride combined with the amino group of phosphatidylethanolamine forms acetylated compounds. PhosphoHpids form addition compounds with salts of heavy metals. Phosphatidylethanolamine and phosphatidjhnositol have affinities for calcium and magnesium ions that are related to interaction with their polar groups. [Pg.99]


See other pages where Affinity additivity is mentioned: [Pg.620]    [Pg.417]    [Pg.164]    [Pg.105]    [Pg.51]    [Pg.239]    [Pg.51]    [Pg.39]    [Pg.111]    [Pg.417]    [Pg.1146]    [Pg.3385]    [Pg.56]    [Pg.620]    [Pg.417]    [Pg.164]    [Pg.105]    [Pg.51]    [Pg.239]    [Pg.51]    [Pg.39]    [Pg.111]    [Pg.417]    [Pg.1146]    [Pg.3385]    [Pg.56]    [Pg.2900]    [Pg.33]    [Pg.608]    [Pg.734]    [Pg.139]    [Pg.11]    [Pg.3]    [Pg.61]    [Pg.119]    [Pg.248]    [Pg.189]    [Pg.221]    [Pg.236]    [Pg.237]    [Pg.238]    [Pg.241]    [Pg.28]    [Pg.47]    [Pg.27]    [Pg.48]    [Pg.95]    [Pg.549]    [Pg.153]    [Pg.248]    [Pg.250]    [Pg.444]   


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