Respuesta :
Answer: The initial concentration of [tex]H_2\text{ and }I_2[/tex] are 0.0192 M and 0.0192 M respectively.
Explanation:
We are given:
Equilibrium concentration of HI = 0.030 M
Moles of hydrogen gas = Moles of iodine gas (concentration will also be the same)
For the given chemical equation:
[tex]H_2+I_2\rightleftharpoons 2HI[/tex]
Initial: x x -
At eqllm: x-c x-c 2c
Calculating the value of 'c'
[tex]2c=0.030\\\\c=\frac{0.030}{2}=0.015M[/tex]
The expression of [tex]K_{eq}[/tex] for above reaction follows:
[tex]K_{eq}=\frac{[HI]^2}{[H_2]\times [I_2]}[/tex]
We are given:
[tex]K_{eq}=50.2[/tex]
[tex][H_2]=(x-c)=(x-0.015)[/tex]
[tex][I_2]=(x-c)=(x-0.015)[/tex]
Putting values in above equation, we get:
[tex]50.2=\frac{(0.030)^2}{(x-0.015)\times (x-0.015)}\\\\x=0.0108,0.0192[/tex]
Neglecting the value of x = 0.0108 M, because the initial concentration cannot be less than the equilibrium concentration.
x = 0.0192 M
Hence, the initial concentration of [tex]H_2\text{ and }I_2[/tex] are 0.0192 M and 0.0192 M respectively.
