At which value of PH, a 0.010 M mn2+ solution starts to precipitate in the form of Mn(OH)2 and at which value of PH, this Mn2+ solution would precipitate completely([Mn2+]<1.0X10^-5 M)
Ksp[Mn(OH)2]= 2.6X10^-13
if the transformation from AgC03 to Ag2Cro4 is complete in a solution, how much should be the value of [cr04^2-]/[CO3^2-] at least?
Ksp(Ag2Cr04)=1.1X10^-12
Ksp(Ag2CO3)=8.1X10^-12
A solution is 0.10 M in Ag+ and 0.10 M in Au 3+, which one will precipitate first as sodium chloride is added
Ksp(AgCl)= 1.8X10^-10
Ksp(AuCl3)= 3.2X10^-25
In-room temperature, the solubility of AgBr is aqua is 7.1X10^-7M and that of Baf2 is 6.3X10^-3M, ask the solubility product constants of these two salts.