300 5 Solid State Physics
5.2 Volume of the unit cell=a^3. Since there are two atoms per unit cell, 8× 1 / 8
for the corner atoms and 1×1 for the centre atom,
Volume= 2 ×4
3
πr^3
Since the body diagonal atoms touch one another,
4 r=a√
3
Volume of atoms in terms of a is2 ×
4
3
πr^3 = 2 ×4
3
π[a√
3 /4]^3
=
√
3 πa^3 / 8Or the fraction of the volume occupied by the body-centred cubic structure is√
3 π/8.5.3
2 dsinθ=nλd 1 =1 .λ
2sinθ=
0. 1
2sin4◦= 0 .717 nmd 2 =0. 1
2sin8◦= 0 .359 nm5.4 nλ=
2 a
(h^2 +k^2 +l^2 )^1 /^2sinθ=2 × 0. 4
(1^2 + 12 + 12 )^1 /^2
sinθsinθ=0. 3
√
3
0. 8
= 0. 6495
θ= 40. 5 ◦5.5 2 dsinθ=nλ
d=1 .λ
2sinθ=
0. 16
2sin30◦= 0 .136 nmForn=2,sinθ=2 × 0. 16
2 × 0. 136
= 1. 176
a value which is not possible. Thus higher order reflections are not possible.5.6 The de Broglie wavelength for electrons is calculated from
λ=√
150
V
=
√
150
54
= 1. 66 A ̊
Bragg’s equation will be satisfied for neutrons of the same wavelength.λ=