The volume of 0.1 M `AgNO_(3)` should be added to 10.0 ml of `0.09 M K_(2)CrO_(4)` to precipitate all the chromate as `Ag_(2)CrO_(4)` is

The volume of 0.025M Ca(OH)_(2) solution which can neutralise 100 ml of 10^(-4)M H_(3)PO_(4) is

The volume of 0.025M Ca(OH)_2 solution which can neutralise 100 ml of 10^(-4) M H_3PO_4 is

The solubility of solid silver chromate. Ag_(2) CrO_(4) . is determined in three solvents. Substance K_(sp) of Ag_(2) CrO_(4) = 9 xx 10^(-12) (I) pure water (ii) 0.1 M AgNO_(3) " " (iii) 0.1 M Na_(2) CrO_(4) Predict the relative solubility of Ag_(2) CrO_(4) in the three solvents:

100 ml, 0.1 M K_(2)SO_(4) is mixed with 100 ml, 0.1M Al_(2)(SO_(4))_(3) solution. The resultant solution is

For a general reaction given below, the value of solubility product can be given us {:(A_(x)B_(y),=xA^(+y),+yB^(-x)),(a,0,0),(a-s,xs,ys):} K_(sp)=(xs)^(x).(ys)^(y) (or) K_(sp)=x^(x)y^(y) (S)^(x+y) Solubility product gives us not only an idea about the solubility of an electrolyte in a solvent but also helps in explaining concept of precipitation and calculation [H^(+)] ion, [OH^(-) ] ion. It is also useful in qualitative analysis for the idetification and separation of basic radicals Potussium chromate is slowly aded toa solution containing 0.20M Ag NO_(3) , and 0.20M Ba(NO_(3))_(2) . Describe what happensif the K_(sp) for Ag_(2),CrO_(4) , is 1.1 xx 10^(-12) and the K_(sp) of BaCiO_(4) , is 1.2 xx 10^(-10) ,