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Salt of Weak Acid and Strong Base

When 50 mL of...

Question

When 50 mL of 0.1 M NaOH is added to 50 mL of 0.1 M $C H_{3} C O O H$ solution, the pH will be:
(use : $(p K_{a})_{a c e t i c a c i d} = 5, l o g 2 = 0.3, l o g 3 = 0.5, l o g 5 = 0.7)$

4.75

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9.75

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4.25

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8.85

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Solution

The correct option is D 8.85
$N a O H + C H_{3} C O O H \to C H_{3} C O O N a + H_{2} O$
Millimoles of NaOH reacting = $m o l a r i t y \times v o l u m e (i n L)$
= $0.1 \times 50 \times$ =5 mmol
This is the same as the amount of the acid reacting - i.e. 5 mmol, all the reactants are used up in the reaction.
Concentration of the salt $C H_{3} C O O N a$ produced:
$\frac{m o l e s}{t o t a l v o l u m e (m L)}$
= $\frac{5}{100}$
=0.05 M
For a salt of a weak acid and a strong base:
pH = $\frac{1}{2} [p K_{w} + p K_{a} + l o g C]$
$p K_{w} = 14$ , $p K_{a} = 5$ (given) and C = $0.05 M$
After putting up the values we get
pH = 8.85

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