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The equilibrium constant (K p) for the interconversion of PCl 5 and PCl 3 is 0.0121:

PCl5 (g) → PCl3 (g) + Cl2 (g)
A vessel is charged with PCl 5 giving an initial pressure of 0.123 atm and yields PCl 3 and Cl 2. At equilibrium, the partial pressure of PCl 3 is ________ atm.
A) 0.0782.
B) 0.0455.
C) 0.0908.
D) 0.0330.
E) 0.123.

User SubniC
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1 Answer

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13 votes

Answer: At equilibrium, the partial pressure of
PCl_(3) is 0.0330 atm.

Step-by-step explanation:

The partial pressure of
PCl_(3) is equal to the partial pressure of
Cl_(2). Hence, let us assume that x quantity of
PCl_(5) is decomposed and gives x quantity of
PCl_(3) and x quantity of
Cl_(2).

Therefore, at equilibrium the species along with their partial pressures are as follows.


PCl_(5)(g) \rightarrow PCl_(3)(g) + Cl_(2)(g)\\

At equilibrium: 0.123-x x x

Now, expression for
K_(p) of this reaction is as follows.


K_(p) = ([PCl_(3)][Cl_(2)])/([PCl_(5)])\\0.0121 = (x * x)/((0.123 - x))\\x = 0.0330

Thus, we can conclude that at equilibrium, the partial pressure of
PCl_(3) is 0.0330 atm.

User Domon
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