Answer:
34.15% is the mass percentage of calcium in the limestone.
Explanation:
Mass of precipitate that is calcium oxalate = 140.2 mg = 0.1402 g
1 mg = 0.001 g
Moles of calcium oxalate = [tex]\frac{0.1402 g}{128 g/mol}=0.001095 mol[/tex]
1 mole of calcium oxalate have 1 mole of calcium atom.
Then 0.001095 moles of calcium oxalate will have 0.001095 moles of calcium atom.
Mass of 0.001095 moles of calcium :
0.001095 mol × 40 g/mol = 0.04381 g
Mass of sample of limestone = 128.3 mg = 0.1283 g
Percentage of calcium in limestone:
[tex]\frac{0.04381 g}{0.1283 g}\times 100=34.15\%[/tex]
34.15% is the mass percentage of calcium in the limestone.
Answer:
here are the percentages I got, I know this question is old but for others, for future reference, I figured I would add my answer. Hope this helps :)
