Pyrolusite, an ore of manganese, contains manganese in the form of MnO₂ - VCE - SSCE Chemistry - Question 7 - 2003 - Paper 1

The moles of oxalic acid originally present were calculated as:

$n(H₂C₂O₄)\text{ used} = 0.0150 - n(H₂C₂O₄)\text{ remaining} = 0.0150 - 0.014633 = 0.000367 \text{ mol}$

Thus, the amount of oxalic acid used to reduce MnO₂ is approximately 0.000367 moles.

From the reaction, 1 mole of MnO₂ reacts with 1 mole of H₂C₂O₄, so the amount of MnO₂ can be calculated as:

$n(MnO₂) = n(H₂C₂O₄)\text{ used} = 0.000367 \text{ mol}$

Next, calculate the molar mass of MnO₂:

$M(MnO₂) = 54.94 + (16.00 \times 2) = 86.94 \text{ g/mol}$

Now, calculate the mass of MnO₂:

$m(MnO₂) = 0.000367 \text{ mol} \times 86.94 \text{ g/mol} \approx 0.03195 \text{ g}$

Finally, calculate the percentage of MnO₂ by mass in the 1.25 g sample:

$\text{Percentage} = \left( \frac{0.03195 \text{ g}}{1.25 \text{ g}} \right) \times 100 \approx 2.56\%$(rounded to 2 decimal places).