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| 1. |
Although AgCl is insoluble in water, it readily dissolves upon the addition of ammoniaAgCl(s) + 2NH_3(aq) iff Ag(NH_3)_2^(-) (aq)+ Cl^(-)(aq)(a) What is the equilibrium constant for this dissolving process?(b) Ammonia is added to a solution containing excess AgCl (s). The final volume is 1 litre and the resulting equilibriuin concentration of NH, is 0.80 M. Calculate the number of moles of AgCl dissolved, the molar concentration of Ag(NH_3)_2and the number of moles of NH, added to the original solution. K_(sp) (AgCl) = 1.8 xx 10^(-10) and K_f [Ag(NH_3)_2^+]= 1.7 xx 10^7 . |
| Answer» Solution :`(a) 3.1 XX 10^(-3) ` (b) 0.045 mole, 0.045 mole, 0.89 mole | |