Question

If $6.3g$ of $NaHC{O}_3$ are added to $15.0g$ of $C{H}_{3}COOH$ solution, the residue is found to weigh $18.0g$. What is the mass of $C{O}_2$ released in the reaction?

Answer 1

$NaHC{O}_3+C{H}_{3}COOH\to C{H}_{3}COONa+H_{2}O+C{O}_2$

molecular weights ,

$NaHC{O}_3=84$ , $C{H}_{3}COOH=60$ , $C{O}_2=44$, given $6.3$ g of $NaHC{O}_3$ reacts with $15$g of $C{H}_{3}COOH$.

Number of moles of $NaHC{O}_3=$given wt. / molecular wt.

$6.3/84=0.075$ moles

Number of moles of $C{H}_{3}COOH=15/60=0.25$

it is to be remember that $1$ mole of reactants combines to produce $1$ mole of products.

Thus $0.075$ moles of $NaHC{O}_3$ will reacts with $0.075$ moles of to produce $0.075$ moles of $C{O}_2$

weight of $1$ moles of $C{O}_2$ = $44$ gm

weight of $1$ moles of $C{O}_2$ = $(0.075\times 44)=3.3$ gm

so 3.3 gm of $C{O}_2$ will be produced in the reaction