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Question

Consider an element ‘Argo’ which forms ccp lattice. Its X-ray studies show that the edge length of its unit cell is 4000 nm. Also the density of Argo is found to be 10 g/cm3. Which of the following elements has the closest atomic mass to that of Argo.

A
Copper (atomic mass= 63 g/mol)
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B
Silver (atomic mass = 108 g/mol)
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C
Molybdenum (atomic mass = 95 g/mol)
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D
Gold (atomic mass = 196 g/mol)
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Solution

The correct option is C Molybdenum (atomic mass = 95 g/mol)

The number of Argo atoms per unit cell(z) = 4
Density (d) = 10 g/cm3
Edge length of unit cell (a) = 4000 nm = 4×108cm
We know that, d=z×Ma3×NA=>M=d×a3×NAz=10×(4×108)3×6.023×10234=96.368 g/mol
This value is closest to the atomic mass of molybdenum.


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