Answer : The equilibrium concentration of
is, 0.16 M
Explanation :
First we have to calculate the concentration of


and,

The given chemical reaction is:

Initial conc. 0.4 2.0 0
At eqm. (0.4-x) (2.0+x) x
The expression for equilibrium constant is:
![K_c=([PCl_3][Cl_2])/([PCl_5])](https://img.qammunity.org/2021/formulas/chemistry/high-school/7kc3ykrhi4n2wnacy2qx27jjvxou8mgh41.png)
Now put all the given values in this expression, we get:

x = -5.57 and x = 0.24
We are neglecting the value of x = -5.57 because equilibrium concentration can not be more than initial concentration.
Thus, the value of x = 0.24
The equilibrium concentration of
= (0.4-x) = (0.4-0.24) = 0.16 M
Therefore, the equilibrium concentration of
is, 0.16 M