Question #04928
1 Answer
Explanation:
The trick here is to realize that the concentrations of the two solids are not taken into account when calculating the equilibrium constant for this equilibrium reaction.
So, you know that at
#"NiO"_ ((s)) + "CO"_ ((g)) rightleftharpoons "Ni"_ ((s)) + "CO"_ (2(g))#
By definition, the equilibrium constant for this reaction is equal to
#K_c = (["CO"_2])/(["CO"])#
The concentrations of the two solids are not added to the expression of
That is the case because the concentration of a solid, or of a pure liquid, for that matter, depends exclusively on the density and on the molar mass of the solid (or liquid).
In other words, it doesn't matter how much solid you have, its concentration can always be taken as being constant.
Now, notice that
You can thus expect the equilibrium concentration of carbon dioxide to be significantly higher than the equilibrium concentration of carbon monoxide.
In fact, you can say that the reaction will convert almost all the carbon monoxide to carbon dioxide.
You know that carbon monoxide and carbon dioxide exist in a
#["CO"] = (0.13000 - x)color(white)(.)"M"#
#["CO"_2] = x color(white)(.)"M"#
Plug this into the expression of
#4000.0 = x/(0.13000 - x)#
Rearrange to solve for
#4000.0 * (0.13000 - x) = x#
#520 - 4000.0x = x#
#40001.0x = 520 implies x = 520/4001.0 = 0.12997#
Therefore, the equilibrium concentration of carbon dioxide will be
#color(darkgreen)(ul(color(black)(["CO"_2] = "0.12997 M")))#
The answer is rounded to five sig figs.
As predicted, the reaction consumed almost all the carbon monoxide to produce carbon dioxide, which is what you should expect when dealing with such a high value of