Respuesta :
Answer:
12.531 grams will be the final mass of calcium carbonate.
Explanation:
[tex]CaCO_3(s)\rightleftharpoons CaO(s)+CO_2(g)[/tex]
Partial pressure of carbon dioxide gas at equilibrium =[tex]P=0.220 atm[/tex]
Volume of carbon dioxide gas = V = 10.0 L
Moles of carbon dioxide gas formed = n
Temperature of the gas = T = 385 K
[tex]PV=nRT[/tex]( ideal gas equation)
[tex]n=\frac{PV}{RT}=\frac{0.220 atm\times 10.0 L}{0.0821 atm L/mol K\times 385 K}=0.06960 mol[/tex]
According to reaction , 1 mole of carbon dioxide gas is formed from 1 mole of calcium carbonate,0.06960 mole of carbon dioxide gas will be obtained from :
[tex]\frac{1}{1}\times 0.06960 mol=0.06960 mol[/tex] calcium carbonate
Moles of calcium carbonate at equilibrium = 0.100 mol - 0.06960 mol = 0.03040 mol
After addition of 0.300 atm of carbon dioxide gas, more amount of calcium carbonate will be be formed.
Here, at the same temperature, the equilibrium pressure of the carbon dioxide gas is 0.220 atm so, entire 0.300 atm of carbon dioxide will get convert to calcium carbonate.
So amount moles of carbon dioxide gas added = moles of calcium carbonate formed after re-establishment of an equilibrium :
Partial pressure of carbon dioxide gas added at equilibrium =[tex]P=0.300 atm[/tex]
Volume of carbon dioxide gas = V = 10.0 L
Moles of carbon dioxide gas formed = n
Temperature of the gas = T = 385 K
[tex]PV=nRT[/tex]( ideal gas equation)
[tex]n=\frac{PV}{RT}=\frac{0.300 atm\times 10.0 L}{0.0821 atm L/mol K\times 385 K}=0.09491 mol[/tex]
Moles of calcium carbonate = 0.09491 mol
Total moles of calcium carbonate in the container :
=0.03040 mol + 0.09491 mol = 0.12531 mol
Mass of 0.12531 moles of calcium carbonate :
0.12531 mol × 100 g/mol = 12.531 g
12.531 grams will be the final mass of calcium carbonate.
