2 NO2(g) + Cl2(g) = 2 NO2CI(g) 1.67 bar of gaseous NO2 and 1.78 bar of gaseous C12 are added to a sealed container at a fixed temperature. After the reaction has reached dynamic equilibrium at this temperature, it was determined that the partial pressure of gaseous NO2CI is 1.06 bar. What is the equilibrium constant for the above reaction at this temperature?

Chemistry: The Molecular Science
5th Edition
ISBN:9781285199047
Author:John W. Moore, Conrad L. Stanitski
Publisher:John W. Moore, Conrad L. Stanitski
Chapter12: Chemical Equilibrium
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Consider the following equilibrium:
2 NO2(g) + Cl2(g) = 2 NO2CI(g)
1.67 bar of gaseous NO2 and 1.78 bar of gaseous C12 are added to a sealed
container at a fixed temperature. After the reaction has reached dynamic equilibrium
at this temperature, it was determined that the partial pressure of gaseous NO2CI is
1.06 bar. What is the equilibrium constant for the above reaction at this
temperature?
Transcribed Image Text:Consider the following equilibrium: 2 NO2(g) + Cl2(g) = 2 NO2CI(g) 1.67 bar of gaseous NO2 and 1.78 bar of gaseous C12 are added to a sealed container at a fixed temperature. After the reaction has reached dynamic equilibrium at this temperature, it was determined that the partial pressure of gaseous NO2CI is 1.06 bar. What is the equilibrium constant for the above reaction at this temperature?
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