(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)

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Chapter1: Chemical Foundations
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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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