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Questions
What is the percentage of the occupied space in a simple cubic unit cell?
Show that the percentage of the occupied space in a simple cubic unit cell is 52.4%.
Calculate the efficiency of packing in case of a metal crystal for a simple cubic unit cell.
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Solution
A single atom is the sole component of a simple cubic unit cell. Assume that the radius of the atom is r and the edge length of a simple cubic unit cell is a.
The two spheres located at the extremities of a simple cubic unit cell are in contact with one another, as illustrated in Fig.
a = 2r ...(i)
Number of atoms per unit cell = `8 xx 1/8 = 1`
Volume of an atom = `4/3 pi r^3` ...(ii)
Volume of unit cell (cube) = a3
= (2r)3
= 8r3
∴ Packing fraction = `"Volume occupied by atoms"/"Volume of unit cell"`
= `((4/3)pi r^3)/(8 r^3)`
= `(1.34 pi r^3)/(8 r^3)`
= `(1.34 xx 3.14)/8 ...[∵ pi = 3.14]`
= 0.524
Hence, the percentage of the occupied space = 52.4%
