A mixture of $2.3 ext{ g}$ formic acid and $4.5 ext{ g}$ oxalic acid is treated with conc. $ ext{H}_2 ex

Question

A mixture of $2.3 	ext{ g}$ formic acid and $4.5 	ext{ g}$ oxalic acid is treated with conc. $	ext{H}_2	ext{SO}_4$. The evolved gaseous mixture is passed through $	ext{KOH}$ pellets. Weight (in g) of the remaining product at STP will be:

Accepted Answer

Formic acid ($	ext{HCOOH}$) and oxalic acid ($	ext{H}_2	ext{C}_2	ext{O}_4$) undergo dehydration in the presence of concentrated $	ext{H}_2	ext{SO}_4$.

1. Dehydration of formic acid:
$	ext{HCOOH} \xrightarrow{	ext{conc. H}_2	ext{SO}_4} 	ext{H}_2	ext{O} + 	ext{CO}$
Molar mass of $	ext{HCOOH} = 46 	ext{ g mol}^{-1}$.
Moles of $	ext{HCOOH} = \frac{2.3 	ext{ g}}{46 	ext{ g mol}^{-1}} = 0.05 	ext{ mol}$.
Thus, $0.05 	ext{ mol}$ of $	ext{CO}$ is produced.

2. Dehydration of oxalic acid:
$	ext{H}_2	ext{C}_2	ext{O}_4 \xrightarrow{	ext{conc. H}_2	ext{SO}_4} 	ext{H}_2	ext{O} + 	ext{CO} + 	ext{CO}_2$
Molar mass of $	ext{H}_2	ext{C}_2	ext{O}_4 = 90 	ext{ g mol}^{-1}$ .
Moles of $	ext{H}_2	ext{C}_2	ext{O}_4 = \frac{4.5 	ext{ g}}{90 	ext{ g mol}^{-1}} = 0.05 	ext{ mol}$.
Thus, $0.05 	ext{ mol}$ of $	ext{CO}$ and $0.05 	ext{ mol}$ of $	ext{CO}_2$ are produced.

Total moles of $	ext{CO}$ evolved $= 0.05 + 0.05 = 0.1 	ext{ mol}$.
Total moles of $	ext{CO}_2$ evolved $= 0.05 	ext{ mol}$.

When the gaseous mixture is passed through $	ext{KOH}$ pellets, $	ext{CO}_2$ is absorbed by $	ext{KOH}$ to form $	ext{K}_2	ext{CO}_3$.
The remaining gaseous product is only $	ext{CO}$.
Weight of the remaining product ($	ext{CO}$) $= 	ext{Moles} 	imes 	ext{Molar mass}$
Weight of $	ext{CO} = 0.1 	ext{ mol} 	imes 28 	ext{ g mol}^{-1} = 2.8 	ext{ g}$.

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