Answer: The value of equilibrium constant for the given reaction is 56.61
Explanation:
We are given:
Initial moles of iodine gas = 0.100 moles
Initial moles of hydrogen gas = 0.100 moles
Volume of container = 1.00 L
Molarity of the solution is calculated by the equation:
[tex]\text{Molarity of solution}=\frac{\text{Number of moles}}{\text{Volume}}[/tex]
[tex]\text{Molarity of iodine gas}=\frac{0.1mol}{1L}=0.1M[/tex]
[tex]\text{Molarity of hydrogen gas}=\frac{0.1mol}{1L}=0.1M[/tex]
Equilibrium concentration of iodine gas = 0.0210 M
The chemical equation for the reaction of iodine gas and hydrogen gas follows:
[tex]H_2+I_2\rightleftharpoons 2HI[/tex]
Initial: 0.1 0.1
At eqllm: 0.1-x 0.1-x 2x
Evaluating the value of 'x'
[tex]\Rightarrow (0.1-x)=0.0210\\\\\Rightarrow x=0.079M[/tex]
The expression of [tex]K_c[/tex] for above equation follows:
[tex]K_c=\frac{[HI]^2}{[H_2][I_2]}[/tex]
[tex][HI]_{eq}=2x=(2\times 0.079)=0.158M[/tex]
[tex][H_2]_{eq}=(0.1-x)=(0.1-0.079)=0.0210M[/tex]
[tex][I_2]_{eq}=0.0210M[/tex]
Putting values in above expression, we get:
[tex]K_c=\frac{(0.158)^2}{0.0210\times 0.0210}\\\\K_c=56.61[/tex]
Hence, the value of equilibrium constant for the given reaction is 56.61
