Total number of moles for the reaction 2HI ⇋ H2 + I2 if α is degree of
dissociation is
2
1
2 -
1 -
Initially 2HI ⇋ H2 + I2
Moles of HI = 2,H2 = 0,I2 = 0
At equilibrium, Moles of HI = 2 − α,H2 = α2,I2 = α2 Total moles = 2 − α + α2 + α2 = 2