Oxides of metal contain 72.4% and 70% of metal respectively if the formula of II oxide is M2O3. find the formula of 1st oxide
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For Oxygen, weigh by percentage= 100 -70 = 30
But Ar(O) = 16
Using law of proportion - [% / Ar], so according to it,
= 70/x : 30/16 = 2:3
= 70/x : 1.875 = 2:3,
where x = 56 (Fe)
If w(O) = 100 – 72.4 = 27.6 (%)
=72.4/56 : 27.6/16
= 1.2928 : 1.725
= 1 : 1.334
Simplifying we get
= 3 : 4
The answer is then- M3O4 (Fe3O4)
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