Answer:
12.6% of the atoms
Explanation:
We know that :
In (D2/D1) = [Qd/R] [(1/T1) – (1/T2)]
where Qd is activation energy for diffusion
T is temperature
Given that
Qd = activation energy for diffusion = 1.6 eV
R = 8.62 x 10-5 eV/K
D1 = 1 %
D2 = ?
T1 = 100°C = 100 + 273 K = 373 K
T2 = 120°C = 120 + 273 K = 393 K
Then,
Calculation:
In (D2/D1) = [Qd/R] [(1/T1)] – (1/T2)]
In (D2/1) = [1.6 eV /8.62 x 10⁻⁵ eV/K] [(1/373)] – (1/393)]
On solving,
D2 = 12.6 %
Therefore,
12.6% of the atoms have the energy required for self-diffusion at 120°C.
