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Consider the reaction.

Upper H subscript 2 upper o (g) plus upper C l subscript 2 upper O (g) double-headed arrow 2 upper H upper C l upper O (g).

At equilibrium, the concentrations of the different species are as follows.

[H2O] = 0.077 M
[Cl2O] = 0.077 M
[HClO] = 0.023 M

What is the equilibrium constant for the reaction at this temperature?
0.089
0.26
3.9
11

User Mpdaly
by
4.8k points

2 Answers

3 votes

Answer:

The value of Equilibrium constant for the given reaction is 0.089

User Alan Jurgensen
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4.7k points
1 vote

Answer:

The value of Equilibrium constant for the given reaction is 0.089

Step-by-step explanation:

The given data shows the following reaction

H2O (g) + Cl2O (g) ⇄ 2 HClO (g)

The above reaction is in equilibrium.

Equilibrium constant K =
([C]^c*[D]^d)/([A]^a*[B]^b)

for the reaction

aA+bB ⇆ cC +dD

so

K =
([HClO]^2)/([H2O][Cl2O])

=
([0.023]^2)/([0.077][0.077]) = 23*23/77*77 = 0.089

Therefore the value of Equilibrium constant for the given reaction is 0.089

User Thomas Calc
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5.0k points