Ferrous oxide has a cubic structure and the edge length of its unit cell is 5.0A∘. Assuming the density of ferrous oxide to be 3.84g/cm3 , the number of Fe2+ and O2− ions present in each unit cell should be: (use NA=6×1023):
A
4Fe2+and4O2−
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B
2Fe2+and2O2−
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C
1Fe2+and1O2−
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D
3Fe2+and4O2−
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Solution
The correct option is A4Fe2+and4O2− Given, a=5Ao=5×10−8cm Mass = density × volume of unit cell Gram molar mass of FeO = 56 + 16 = 72g
To get the number of formula units per unit cell, Number of formula units=Mass of a mole of unit cellsgram molar mass of FeO ⟹n=3.84×(5×10−8)3×6×102372=4
Hence, there are 4FeO units per unit cell, i.e. 4 each of Fe2+ and O2− ions