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At 473K, equilibrium constant K(C) for t...

At 473K, equilibrium constant `K_(C)` for the decompositioni of phosphorus pentachloride, `PCl_(5)` is `8.3xx10^(-3)`. If the decomposition is depicted as:
`PCl_(5)(g)hArrPCl_(3)(g)+Cl_(2)(g)DeltaH=124.0 kJ "mol"^(-1)`
a. Write an expression of `K_(c)` for the reaction.
b. What is the value of `K_(c)` for the reverse reaction at the same temperature?
c. What would be effect on `K_(c)` if
(i) more `PCl_(5)` is added (ii) pressure is increased (iii) the temperature in increased.

Text Solution

Verified by Experts

(a)`K_c=([PCl_3(g)][Cl_2(g)])/([PCl_5(s)])`
(b)`1/(8.3xx10^(-3))=1.20xx10^2`
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At 473 K , equilibrium constant K_(c ) for decomposition of phosphorus pentachloride, PCl_(5) is 8.3xx10^(-3) . If decomposition is depicted as, PCl_(5)(g) hArr PCl_(3)(g)+Cl_(2)(g) Delta_(r)H^(Θ)=124.0 kJ mol^(-1) a. Write an expression for K_(c ) for the reaction. b. What is the value of K_(c ) for the reverse reaction at the same temperature? c. What would be the effect on K_(c ) if i. More PCl_(5) is added ii. Pressure is increased iii. The temperature is increased?

At 473K, equilibrium constant, K_(c) for decomposition of phosphorus pentachloride, PCl_(5) is 8.3xx10^(-3) . If decomposition is depicted as : PCl_(5(g))hArrPCl_(3(g))+Cl_(2(g)),Delta_(r)H^(@)=124.0" kJ mol"^(-1) what would be the effect on reaction if the temperature is increased ?

For PCl_(5)(g)hArrPCl_(3)(g)+Cl_(2)(g), write the expression of K_(c)

The equilibrium constant (K_(p)) for the reaction, PCl_(5(g))hArrPCl_(3(g))+Cl_(2(g)) is 16 . If the volume of the container is reduced to half of its original volume, the value of K_(p) for the reaction at the same temperature will be:

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