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A 15.5 mL sample of 0.215 M KOH solution required 21.2 mL of aqueous acetic acid solution in a titration experiment. Calculate the molarity of the acetic acid solution.
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A 15.5 mL sample of 0.215 M KOH solution required 21.2 mL of aqueous acetic acid solution in a titration experiment. Calculate the molarity of the acetic acid solution.

User Patrick Mutuku
by
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1 Answer

2 votes

Answer:

0.156 M

Step-by-step explanation:

The computation of the molarity of the acetic acid solution is shown below:

The balanced chemical reaction is


KOH + CH_3COOH -->CH_3COOK + H_2O

As we know that The KOH and acetic acid would have 1:1 ratio. Here we need to determine the moles of KOH

So,

moles KOH = 0.0155 L ×0.214 mol/L

= 3.317x10-3 mol

Now moles CH_3COOH = 3.317x10-3 mol

[CH3COOH] = moles ÷ volume

= 3.317 × 10^-3 mol ÷ 0.0212 L

= 0.156 M

User WGS
by
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