When 10 mL of 0.1 M acetic acid `(pK_(a) = 5)` is titrated against 10 mL of 0.1 M ammonia solution `(pK_(b) = 5)`, the equivalent point will occur at pH.

When 10ml of 0.1 M acetic acid (pK_(a)=5.0) is titrated against 10 ml of 0.1 M ammonia solution (pK_(b)=5.0) , the equivalence point occurs at pH

When 10 ml of 0.1 M acetic acid (pk_(a)=5.0) is titrated against 10 ml of 0.1M ammonia solution (pk_(b)=5.0) ,the equivalence point occurs at pH

pH of when 50mL of 0.10 M ammonia solution is treated with 50 mL of 0.05 M HCI solution :- (pK_(b) "of ammonia"=4.74)

100 mL of 0.02M benzoic acid (pK_(a)=4.2) is titrated using 0.02 M NaOH . pH values after 50 mL and 100 mL of NaOH have been added are

When 40mL of a 0.1 M weak base, BOH is titrated with 0.01M HCl , the pH of the solution at the end point is 5.5 . What will be the pH if 10mL of 0.10M NaOH is added to the resulting solution ?

When a 20 mL of 0.08 M weak base BOH is titrated with 0.08 M HCl, the pH of the solution at the end point is 5. What will be the pOH if 10 mL of 0.04 M NaOH is added to the resulting solution? [Given : log 2=0.30 and log 3=0.48]

Fixed volume of 0.1 M benzoic acid (pK_(a)=4.2) solution is added into 0.2 M sodium benzoate solution and formed a 300 mL, resultant acidic buffer solution. If pH of this buffer solution is 4.5 then find added volume of benzoic acid :

Fixed volume of 0.1M benzoic acid (pK_(a) = 4.2) solution is added into 0.2M sodium benzote solution and formed a 300mL , resulting acidic buffer solution. If pH of the resulting solution is 3.9 , then added volume of banzoic acid is

On adding 100mL of 10^(-2) M NaOH solution to 100mL of 0.01M Triethyl amine solution (K_(b)=6.4xx10^(-5)) ,change in pH of solution will be:

50.0 mL of 0.10 M ammonia solution is treated with 25.0 mL of 0.10M HCI . If K_(b)(NH_(3))=1.77xx10^(-5) , the pH of the resulting solution will be