Answer:
Partial pressure of ICl at equilibrium is 1.69 atm
Partial pressure of chloride gas at equilibrium is 0.00631 atm.
Partial pressure of iodine gas at equilibrium is 0.00631 atm.
Explanation:
The partial pressure of ICl initially = 1.70 atm
The equilibrium constant of the reaction = [tex]K_p=1.40\times 10^{-5}[/tex]
[tex]2ICl(g)\rightequilibrium Cl_2(g)+I_2(g)[/tex]
Initially
1.70 atm     0     0
At equilibrium
(1.70-2p)      p  p
The expression of equilibrium constant is given by :
[tex]K_p=\frac{p_{Cl_2}\times p_{I_2}}{(p_{ICl})^2}[/tex]
[tex]1.40\times 10^{-5}=\frac{p\times p}{(1.70-2p)^2}[/tex]
Solving for p :
p = 0.00631 atm
Partial pressure of ICl at equilibrium = 1.70 atm- 2 0.00631 atm = 1.69 atm
Partial pressure of chloride gas at equilibrium = 0.00631 atm.
Partial pressure of iodine gas at equilibrium = 0.00631 atm.