Answer : The mass percentage of barium in the compound is, 53.8 %
Explanation : Given,
Mass of barium compound = 441 mg
Mass of barium sulfate = 403 mg = 0.403 g (1 mg = 0.001 g)
The balanced chemical reaction will be:
[tex]Ba^{2+}(aq)+Na_2SO_4(aq)\rightarrow BaSO_4(s)+2Na^+(aq)[/tex]
First we have to calculate the moles of [tex]BaSO_4[/tex]
[tex]\text{Moles of }BaSO_4=\frac{\text{Mass of }BaSO_4}{\text{Molar mass of }BaSO_4}[/tex]
Molar mass of [tex]BaSO_4[/tex] = 233.38 g/mole
[tex]\text{Moles of }BaSO_4=\frac{0.403g}{233.38g/mole}=0.001727mole[/tex]
Now we have to calculate the moles of barium ion.
From the balanced chemical reaction, we conclude that
As, 1 mole of barium sulfate produced from 1 mole of barium ion
So, 0.001727 mole of barium sulfate produced from 0.001727 mole of barium ion
Now we have to calculate the mass of barium ion.
[tex]\text{ Mass of }Ba^{2+}=\text{ Moles of }Ba^{2+}\times \text{ Molar mass of }Ba^{2+}[/tex]
Molar mass of barium = 137.3 g/mol
[tex]\text{ Mass of }Ba^{2+}=(0.001727moles)\times (137.3g/mole)=0.2371g[/tex]
Now we convert the mass of barium ion from gram to mg.
Conversion used : (1 g = 1000 mg)
Mass of barium ion = 0.2371 g = 237.1 mg
Now we have to calculate the mass percentage of barium in the compound.
Mass percent of barium = [tex]\frac{237.1mg}{441mg}\times 100=53.8\%[/tex]
Thus, the mass percentage of barium in the compound is, 53.8 %
