Answer: The equilibrium constant,
, for the reaction is 0.061.
Step-by-step explanation:
Initial concentration of
=
Equilibrium concentration of
=
The given balanced equilibrium reaction is,
![PCl_5(g)\rightleftharpoons PCl_3(g)+Cl_2(g)](https://img.qammunity.org/2022/formulas/chemistry/college/zneoavz5dw0grexaidz19h47n3zblxtug8.png)
Initial conc. 0.039 M 0 M 0 M
At eqm. conc. (0.039-x) M (x) M (x) M
Given : (0.039-x) = 0.012
x = 0.027
The expression for equilibrium constant for this reaction will be,
![K_c=([Cl_2]* [PCl_3])/([PCl_5])](https://img.qammunity.org/2022/formulas/chemistry/college/64r6swb71wzx6g90t6vxrampgefeqzvlfa.png)
Now put all the given values in this expression, we get :
![K_c=(0.027* 0.027)/(0.012)=0.061](https://img.qammunity.org/2022/formulas/chemistry/college/q6b9v225o49x584u3f1tuhst3gymruzx4m.png)
The equilibrium constant,
, for the reaction is 0.061.