Answer:
Equilibrium concentration of reactants and products:
[tex][HI]=(0.372-2x) M =(0.372-2\times 0.03935)M =0.2933 M[/tex]
[tex][H_2]=x = 0.03935 M[/tex]
[tex][I_2]=x = 0.03935 M[/tex]
Explanation:
The equilibrium constant of the reaction = [tex]K_c=1.80\times 10^{-2}[/tex]
Mole sof HI = 0.372 mol
Volume of the vessel = 1.00 L
Initial concentration of HI = [tex]\frac{0.372 mol}{1.00 L}=0.372 M[/tex]
[tex]2HI(g)\rightarrow H_2(g) + I_2(g)[/tex]
0.372 M
At equilibrium
(0.372-2x) M x x
An expression of an equilibrium constant will be given as;
[tex]K_c=\frac{[H_2][I_2]}{[HI]^2}[/tex]
[tex]1.80\times 10^{-2}=\frac{x\times x}{(0.372-2x)^2}[/tex]
Solving for x;
x = 0.03935
Equilibrium concentration of reactants and products:
[tex][HI]=(0.372-2x) M =(0.372-2\times 0.03935)M =0.2933 M[/tex]
[tex][H_2]=x = 0.03935 M[/tex]
[tex][I_2]=x = 0.03935 M[/tex]
