Question

100ml of 0.2M acetic acid solution

Answer 1

Answer:

The pH of a solution obtained by mixing 100 ml of 0.2 M CH

3

COOH is with 100 ml of 0.2 M NaOH would be:

[Note : pK

a

for CH

3

COOH=4.74 and log2=0.301)].

Explanation:

Correct option is

B

8.87

CH

3

COOH+NaOH→CH

3

COONa+H

2

O

Moles of CH

3

COOH=0.2×100×1=20 mmol

Moles of NaOH=0.2×100×1=20 mmol

So there is complete neutralisation

[salt]=C=

100+100

20

=

200

20

=0.1M

pH=7+

2

1

pK

a

+

2

1

log

10

C

=7+

2

1

(4.74)+

2

1

log(0.1)

=7+2.37−

2

1

log

10

10

pH=9.37−0.5=8.87