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Question

An element crystallises in a face-centered cubic lattice having density of 5 g/cm3 and edge length of the side of unit cell is 300 pm. Calculate mass of the element containing 3×1024 atoms.
Take
NA=6×1023

A
10.12 g
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B
145.66 g
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C
20.25 g
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D
101.25 g
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Solution

The correct option is D 101.25 g
Density of the unit cell,
ρ=Z×MNA×a3
where,
Z=No. of atoms in a unit cell=4 for FCCM=Molecular massNA=Avagadro number=6×1023
a=length of the unit cell =300pm=3×108cm


M=ρNAa3Z
M=5×6×1023×27×10244

M=20.25 g mol1

Thus,
6×1023 atoms weigh 20.25 g
3×1024 atoms weigh 20.25×3×10246×1023=101.25 g

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