QUESTION IMAGE
Question
a mixture of gases contains 3.85 moles of neon (ne), 0.92 moles of argon (ar), and 2.59 moles of xenon (xe). calculate the partial pressure of the gases if the total pressure is 2.50 atm at a certain temperature.
Step1: Calculate total moles
Total moles \(n_{total}=n_{Ne}+n_{Ar}+n_{Xe}\)
\(n_{total}=3.85 + 0.92+2.59=7.36\) moles
Step2: Calculate mole fraction of Ne
Mole fraction \(X_{Ne}=\frac{n_{Ne}}{n_{total}}\)
\(X_{Ne}=\frac{3.85}{7.36}\approx0.523\)
Step3: Calculate partial pressure of Ne
Partial pressure \(P_{Ne}=X_{Ne}\times P_{total}\)
\(P_{Ne}=0.523\times2.50 = 1.31\) atm
Step4: Calculate mole fraction of Ar
Mole fraction \(X_{Ar}=\frac{n_{Ar}}{n_{total}}\)
\(X_{Ar}=\frac{0.92}{7.36}\approx0.125\)
Step5: Calculate partial pressure of Ar
Partial pressure \(P_{Ar}=X_{Ar}\times P_{total}\)
\(P_{Ar}=0.125\times2.50 = 0.31\) atm
Step6: Calculate mole fraction of Xe
Mole fraction \(X_{Xe}=\frac{n_{Xe}}{n_{total}}\)
\(X_{Xe}=\frac{2.59}{7.36}\approx0.352\)
Step7: Calculate partial pressure of Xe
Partial pressure \(P_{Xe}=X_{Xe}\times P_{total}\)
\(P_{Xe}=0.352\times2.50 = 0.88\) atm
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The partial pressure of Ne is \(1.31\) atm, the partial pressure of Ar is \(0.31\) atm, and the partial pressure of Xe is \(0.88\) atm.