CuBr ==> Cu^+ + Br^-
Cu^+ + 2NH3 ==> Cu(NH3)2^+
----------------------------
add equn 1 to eqn 2.
...CuBr(s) + 2NH3 ==>Cu(NH3)2^+ + Br^-
I.............0.81M...0............0
C............-2x......x............x
E...........0.81-2x...x............x
Keq for the rxn shown is Ksp*Kf
Substitute from the ICE chart and solve for x = [Cu(NH3)2] = (Br^-) = solubility of CuBr in M. Then convert to g/L.
Copper(I) ions in aqueous solution react with NH3 according to
Cu^+ + 2NH3 --> Cu(NH3)2^+ Kf=6.3x10^10
Calculate the solubility (in g/L) of CuBr (Ksp=6.3x10^-9) in 0.81 M NH3.
2 answers
milk