Question

An atom crystallizes in fcc crystal lattice and has a density of 10 g cm⁻³ with unit cell edge length of 100 pm. calculate the number of atoms present in 1 g of crystal.

Answer 1

Given, Density = 10 g cm⁻³

mass = 1 g

Edge length of unit cell = 100 pm

Volume = `"mass"/"density" = (1  "g")/(10  "g cm"^-3)` = 0.1 cm³

Volume of unit cell = a³

= 100 × 10⁻¹⁰cm³

= 1 × 10⁻²⁴ cm³

Number of unit cell in 1 g of crystal,

= `"Total volume"/"Volume of unit cell"`

= `(0.1  "cm"^3)/(1 xx 10^-24  "cm"^3)`

The given unit cell is of fcc type. Therefore. it contains 4 atoms.

0.1 × 10²⁴ unit cells will contain 4 × 0.1 × 10²⁴ = 4 × 10²³atoms