Question

Calculate the pH for the following weak acid.

Answer 1

Answer:- pH of the solution is 2.30.

Solution:-  The ionization equation for the given acid is written as:

$HCOOH\leftrightarrow H^++HCOO^-$

Let's say the initial concentration of the acid is c and the change in concentration x.

Then, equilibrium concentration of acid = (c-x)

and the equilibrium concentration for each of the product would be x.

Equilibrium expression for the above equation would be:

$Ka=\frac{[H^+][HCOO^-]}{[HCOOH]}$

$1.8*10^-^4=\frac{x^2}{c-x}$

From given info, equilibrium concentration of the acid is 0.14.

So, (c-x) = 0.14

hence, $1.8*10^-^4=\frac{x^2}{0.14}$

Let's solve this for x. Multiply both sides by 0.14.

$2.52*10^-^5=x^2$

taking square root to both sides:

$x=0.00502$

Now, we have got the concentration of $[H^+]$ .

$[H^+]$ = 0.00502 M

We know that, $pH=-log[H^+]$

pH = -log(0.00502)

pH = 2.30

So, the pH of HCOOH solution is 2.30.