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Question

The chief ore of Zn is its sulphide, ZnS. The ore is concentrated by froth floatation process and then heated in air to convert ZnS to ZnO. The following reactions take place in the extraction of Zn:
2ZnS+3O22ZnO+2SO2 (Yield: 80 %)
ZnO+H2SO4ZnSO4+H2O (Yield: 100 %)
2ZnSO4+2H2O2Zn+2H2SO4+O2 (Yield: 80%)
The number of moles of ZnS required for producing 2 mol of Zn will be:

A
3.125
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B
2.5
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C
2.125
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D
4.25
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Solution

The correct option is A 3.125
2ZnS+3O22ZnO+2SO2(Yield: 80 %) (i)
ZnO+H2SO4ZnSO4+H2O(Yield: 100 %) (ii)
2ZnSO4+2H2O2Zn+2H2SO4+O2(Yield: 80 %) (iii)
In reaction (iii),
2 mol of ZnSO4 produces 2 mol of Zn.
% yield=Experimental yieldTheoretical yield×100
Theoretical moles of Zn 280×100=2.5 mol = actual moles of ZnSO4
In reaction (ii),
2.5 mol will be produced by 2.5 mol of ZnO.
Since yield is 100 %, mol of ZnO is 2.5 mol.
In reaction (i),
Theoretical yield of ZnO =2.580×100=3.125 mol of ZnS taken
Therefore, 3.125 mol of ZnS is required for producing 2 mol of Zn.

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