Answer:
P= 7.01 atm
P(COâ‚‚)= 2.34 atm
Explanation:
Step 1: Convert the temperature to Kelvin
We will use the following expression.
K = °C + 273.15
K = 32.0°C + 273.15 = 305.2 K
Step 2: Calculate the total number of moles of the mixture
We will use the following expression.
n = nCOâ‚‚ + nNâ‚‚ = 2.33 mol + 4.66 mol = 6.99 mol
Step 3: Calculate the total pressure of the mixture
We will use the ideal gas equation.
P Ă— V = n Ă— R Ă— T
P = n Ă— R Ă— T / V
P = 6.99 mol Ă— 0.0821 atm.L/mol.K Ă— 305.2 K / 25.0 L
P= 7.01 atm
Step 4: Calculate the partial pressure of carbon dioxide
We will use the ideal gas equation.
P(COâ‚‚) Ă— V = nCOâ‚‚ Ă— R Ă— T
P(COâ‚‚) = nCOâ‚‚ Ă— R Ă— T / V
P(COâ‚‚) = 2.33 mol Ă— 0.0821 atm.L/mol.K Ă— 305.2 K / 25.0 L
P(COâ‚‚)= 2.34 atm