Question

1 g of an impure sample of magnesium carbonate (containing no thermally decomposable impurities) on complete thermal decomposition gave 0.44 g of carbon dioxide gas. The percentage of impurity in the sample is

पर्याय

• 0%

• 4.4%

• 16%

• 8.4%

Answer 1

16%

Explanation:

\[\ce{MgCO3 -> MgO + CO2 ^}\]

MgCO₃: (1 × 24) + (1 × 12) + (3 × 16) = 84 g

CO₂: (1 × 12) + (2 × 16) = 44g

100% pure 84 g MgCO₃ on heating gives 44 g CO₂

Given that 1 g of MgCO₃ on heating gives 0.44 g CO₂

Therefore, 84 g MgCO₃ sample on heating gives 36.96 g CO₂ = 100%

Percentage of purity of the sample = `(100%)/(44  "g CO"_2) xx 36.96` g CO₂

= 84%

Percentage of impurity = 16%