Calculate for `0.01N` solution of sodium acetate,
a. Hydrolysis constant b. Dergee of hydrolysis
c. `pH` Given `K_(a) = 1.9 xx 10^(-5)`

A 0.1 N solution of sodium bicarbonate has a pH value of

The degree of hydrolysis of 0.01 M NH_(4)CI is (K_(h) = 2.5 xx 10^(-9))

Calculate the hydrolysis constant. Degree of hydrolysis and pH of 0.5 M solution of NH_4Cl. ( Given : K_a = 1.78 xx 10 ^(-5) ,K_b= 1.8 xx 10 ^(-5) and K_w = 1.8 xx 10 ^(-14) )

Calculate the degree of hydrolysis of 0*2 (M) sodium acetate solution. (Hydrolysis constant of sodium acetate = 5*6 xx 10^(-10) and ionic product of H_2O = 10^(-14) at 25^@C) "" ^(**"**)

Calculate the hydrolysis constant and degree of hydrolysis of NH_(4) Cl" in " 0.1 M solution . K_(b) = 1.8 xx 10^(-5) . Calculate the concentration of H^(+) ions in the solution .

Calculate the hydrolysis constant (K_(h)) and degree of hydrloysis (h) of NH_(4)C1 in 0.1M solution. K_(b) = 2.0 xx 10^(-5) . Calculate the [overset(Theta)OH] ions in the solution.

Calculate the hydrolysis constant. Degree of hydrolysis and pH of a 0.1 M NH_4Cl solution at 25 ^(@) C Given : K_b " for " NH_4OH= 1.8 xx 10^(-5)

Calculate the pH and degree of hydrolsis of 0.01 M solution of KCN , K_(s) for HCN is 6.2 xx 10^(-19) .

Calculate the degree of hydrolysis of 0.1 M solution of sodium acetate at 298 K : K_(a) = 1.8 xx 10^(-5) .

Calculate the degree of hydrolysis of 0.1 M solution of acetate at 298 k. Given : K_a=1.8xx10^(-5)