Answer:
[tex]p_{CO_2}^{eq}=1.59atm[/tex]
Explanation:
Hello, in this case, one could consider the undergoing chemical reaction as:
[tex]SrCO_3(s)\rightleftharpoons SrO(s)+CO_2(g)[/tex]
Thus, since 1.0 g of strontium carbonate is placed, the equilibrium equation takes the following form, excluding the solid-stated species and considering just the carbon dioxide as it is gaseous:
[tex]Kp=p_{CO_2}^{eq}=1.59atm[/tex]
Hence, since at the beginning there is no carbon dioxide, its pressure at equilibrium equals Kp:
[tex]Kp=p_{CO_2}^{eq}=1.59atm[/tex]
Which was clearly defined above.
Best regards.
