(1) Ag+ + Cl - < = > AgCl (aq) K1 = 2.0 x 10 3 (2) AgCl (aq) + Cl - < = > AgCl2- K2 = 9.3 (3) AgCl (s) < = > Ag+ + Cl - K3 = 1.8 x 10-10 (a) Find K for the reaction AgCl(s) < = > AgCl (aq)
(1) Ag+ + Cl - < = > AgCl (aq) K1 = 2.0 x 10 3 (2) AgCl (aq) + Cl - < = > AgCl2- K2 = 9.3 (3) AgCl (s) < = > Ag+ + Cl - K3 = 1.8 x 10-10 (a) Find K for the reaction AgCl(s) < = > AgCl (aq)
Chemistry
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Chapter1: Chemical Foundations
Section: Chapter Questions
Problem 1RQ: Define and explain the differences between the following terms. a. law and theory b. theory and...
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Consider the following equilibria in aqueous solutions:
(1) Ag+ + Cl - < = > AgCl (aq) K1 = 2.0 x 10 3
(2) AgCl (aq) + Cl - < = > AgCl2- K2 = 9.3
(3) AgCl (s) < = > Ag+ + Cl - K3 = 1.8 x 10-10
(a) Find K for the reaction AgCl(s) < = > AgCl (aq)
(b) Find [ AgCl(aq)] in equilibrium with excess AgCl(s)
(c) Find K for AgCl2- < = > AgCl (s) + Cl -
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