`K_(a)` for `HCN` is `5 xx 10^(-10)` at `25^(@)C`. For maintaining a constant `pH` of `9.0`, the volume of `5M KCN` solution required to be added to `10mL` of `2M HCN` solution is

Volume of 0.1 M H_2SO_4 solution required to neutralize 10 ml of 0.2 M NaOH solution is :

Volume of 0.1 M H_2SO_4 solution required to neutralize 10 ml of 0.1 M NaOH solution is :

1.0 M HCN solution is 1.0 percent ionised. The number of CN^(-) ions in 250 ml of the solution is :

10mL of 2(M) NaOH solution is added to 200mL of 0.5 (M) of NaOH solution. What is the final concentration?

When 100 ml of M/10 NaOH solution and 50 ml of M/5 HCI solution are mixed, the pH of resulting solution would be

10^(-5)M HCI solution at 25^(@)C is diluted 1000 times. The pH of the diluted solution will

pH of 0.5 M aqueous NaCN solution is (pK_a of HCN = 9.3, log 5 = 0.7)

The dissociation constant of acetic acid is 8 xx 10^(-5) ta 25^(@)C . Find the pH of i. M//10 ii. M//100 solution of acetic acid.

The dissociation constant of an acid is 1xx10^(-5) . The pH of its 0.1 M solution will be approximately

20mL of 0.2M NaOH are added to 50mL of 0.2M acetic acid (K_(a)=1.85xx10^(-5)) Take log2=0.3,log3=0.48 (1) What is pH of solution? (2) Calculate volume of 0.2M NaOH required to make the pH of origin acetic acid solution. 4.74 .