Exactly 1.0 mol N2O4 is placed in an empty 1.0-L container and allowed to reach equilibrium described by the equation N2O4(g) 2NO2(g). If at equilibrium the N2O4 is 28.0% dissoc…

Question

asked Nov 10, 2020 102k views

1 Answer

Giovanni Far · Answer 1 · 2020-11-15T10:31:56+0000

Answer : The correct option is, (a) 0.44

Explanation :

First we have to calculate the concentration of
.

$\text{Concentration of }N_2O_4=\frac{\text{Moles of }N_2O_4}{\text{Volume of solution}}$

$\text{Concentration of }N_2O_4=(1.0moles)/(1.0L)=1.0M$

Now we have to calculate the dissociated concentration of
.

The balanced equilibrium reaction is,

$N_2O_4(g)\rightleftharpoons 2NO_2(aq)$

Initial conc. 1.0 M 0

At eqm. conc. (1.0-x) M (2x) M

As we are given,

The percent of dissociation of
N_2O_4 =
$\alpha$ = 28.0 %

So, the dissociate concentration of
N_2O_4 =
$C\alpha=1.0M* (28.0)/(100)=0.28M$

The value of x =
$C\alpha$ = 0.28 M

Now we have to calculate the concentration of
$N_2O_4\text{ and }NO_2$ at equilibrium.

Concentration of
N_2O_4 = 1.0 - x = 1.0 - 0.28 = 0.72 M

Concentration of
NO_2 = 2x = 2 × 0.28 = 0.56 M

Now we have to calculate the equilibrium constant for the reaction.

The expression of equilibrium constant for the reaction will be:

K_c=([NO_2]^2)/([N_2O_4])

Now put all the values in this expression, we get :

K_c=((0.56)^2)/(0.72)=0.44

Therefore, the equilibrium constant
for the reaction is, 0.44