The following reaction was performed in a sealed vessel at 772 ∘C : H2(g)+I2(g)⇌2HI(g) Initially, only H2 and I2 were present at concentrations of [H2]=3.90M and [I2]=2.95M . The equilibrium concentration of I2 is 0.0500 M . What is the equilibrium constant, Kc, for the reaction at this temperature?

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Аноним Аноним · Answer 1 · 2020-03-23T05:42:35+01:00

Answer: The value of [tex]K_c[/tex] for the given equation is 160.2

Explanation:

We are given:

Initial concentration of hydrogen gas = 3.90 M

Initial concentration of iodine gas = 2.95 M

Equilibrium concentration of iodine gas = 0.0500 M

The given chemical equation follows:

[tex]H_2(g)+I_2(g)\rightleftharpoons 2HI(g)[/tex]

Initial: 3.90 2.95

At eqllm: 3.90-x 2.95-x 2x

Evaluating the value of 'x':

[tex]\Rightarrow (2.95-x)=0.0500\\\\x=2.9[/tex]

So, equilibrium concentration of hydrogen gas = (3.95 - x) = (3.95 - 2.9) = 1.05 M

Equilibrium concentration of HI gas = x = 2.9 M

The expression of [tex]K_c[/tex] for above equation follows:

[tex]K_c=\frac{[HI]^2}{[H_2][I_2]}[/tex]

Putting values in above equation, we get:

[tex]K_c=\frac{(2.9)^2}{1.05\times 0.0500}\\\\K_c=160.2[/tex]

Hence, the value of [tex]K_c[/tex] for the given equation is 160.2