Answer: The value of K for this reaction is 1.6875
Explanation:
Moles of [tex]NH_3[/tex] = 4.0 mole
Volume of solution = 2.0 L
Initial concentration of [tex]NH_3[/tex] = [tex]\frac{moles}{Volume}=\frac{4.0}{2.0}=2.0M[/tex]
The given balanced equilibrium reaction is,
[tex]2NH_3(g)\rightleftharpoons N_2(g)+3H_2(g)[/tex]
Initial conc. 2 M 0 M 0 M
At eqm. conc. (2-2x) M (x) M (3x) M
Equilibrium concentration of [tex]NH_3[/tex] = [tex]\frac{moles}{Volume}=\frac{2.0}{2.0}=1.0M[/tex]
The expression for equilibrium constant for this reaction will be,
[tex]K_c=\frac{[x]\times [3x]^3}{[(2-2x)]^2}[/tex]
(2-2x) = 1.0
x= 0.5 M
Now put all the given values in this expression, we get :
[tex]K_c=\frac{[0.5]\times [3\times 0.5]^3}{[(2-2\times 0.5)]^2}[/tex]
[tex]K_c=1.6785[/tex]
Thus the value of K for this reaction is 1.6875
