CHAPTER 10EFFECT OF ELECTROLYTES ON CHEMICAL .ppt
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1、CHAPTER 10 EFFECT OF ELECTROLYTES ON CHEMICAL EQUILIBRIA,The position of most solution equilibria depends on the electrolyte concentration of the medium, even when the added electrolyte contains no ion in common with those involved in the equilibrium.H3AsO4 + 3I- + 2H+ H3AsO3 + I3- + H2OIf an electr
2、olyte, such as barium nitrate, potassium sulfate, or sodium perchlorate, is added to this solution, the color of the triiodide ion becomes less intense. This decrease in color intensity indicates that the concentration of I3- has decreased and that the equilibrium has been shifted to the left by the
3、 added electrolyte.,How Do Ionic Charges Affect Equilibria?The magnitude of the electrolyte effect is highly dependent on the charges of the participants in an equilibrium. When only neutral species are involved, the position of equilibrium is essentially independent of electrolyte concentration. Wi
4、th ionic participants, the magnitude of the electrolyte effect increases with charge. In a 0.02 M solution of potassium nitrate, the solubility of barium sulfate is larger than it is in pure water by a factor of 2. The solubility of barium iodate by a factor of only 1.25 and that of silver chloride
5、by 1.2,What Is the Effect of Ionic Strength on Equilibria?The effect of added electrolyte on equilibria is independent of the chemical nature of the electrolyte but depends on a property of the solution called the ionic strength. This quantity is defined as ionic strength = =1/2(AZA2 + BZB2 + CZC2 +
6、 )Where A, B, C, represent the molar species concentrations of ions A, B, C, and ZA, ZB, ZC, are their ionic charges.For solutions with ionic strengths of 0.1 M or less, the electrolyte effect is independent of the kind of ions and dependent only on the ionic strength. This independence with respect
7、 to electrolyte species disappears at high ionic strengths.,The Salt EffectThe electrolyte effect results from the electrostatic attractive and repulsive forces that exist between the ions of an electrolyte and the ions involved in an equilibrium. These forces cause each ion from the dissociated rea
8、ctant to be surrounded by a sheath of solution that contains a slight excess of electrolyte ions of opposite charge. When a barium sulfate precipitate is equilibrated with a sodium chloride solution, each dissolved barium ion is surrounded by an ionic atmosphere carries a small net negative charge.,
9、continued Each sulfate ion is surrounded by an ionic atmosphere that tends to be slightly positive. These charged layers make the barium ions somewhat less positive and the sulfate ions somewhat less negative than they would be in the absence of electrolyte. The consequence of this effect is a decre
10、ase in overall attraction between barium and sulfate ions and an increase in solubility, which becomes greater as the number of electrolyte ions in the solution becomes larger.,ACTIVITY COEFFICIENTSChemists use the term activity, a, to account for the effects of electrolytes on chemical equilibria.
11、The activity, or effective concentration, of species X depends on the ionic strength of the medium and is defined asaX =xXwhere, aX is the activity of X, X is its molar concentration, and x is a dimensionless quantity called the activity coefficient.,continuedThe activity coefficient and thus the ac
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