The value of pH of 0.01 mol dm-3 CH3COOH (Ka=1.74×10-5) is-

1. 3.4 2. 3.6
3. 3.9 4. 3.0
Hint: [H+]=Ka.C
Step 1:
Calculate the concentration of H+ ion as follows:
Given that, (Ka=1.74×10-5)
Concentration of CH3COOH=0.01 mol dm-3
[H+]=Ka.C

=1.74×10-5×0.01=4.17×10-4

Step 2:

pH=-log [H+]

=-log (4.17×10-4)
=3.4