A 1.00 L flask contains 2.073 g O2 and 20.13 g N2 at 25.0°C. What is the total pressure? [1] 0.856 atm
[2] 1.09 atm
[3] 19.2 atm
[4] 22.2 atm
[5] None of the above
V = 1 L
T = 25°C = 298 K
m(O2) = 2.073 g
m(N2) = 20.13 g
P = ?
n(O2) = m / M = 2.073 / 32 = 0.065 mol
n(N2) = m / M = 20.13 / 28 = 0.72 mol
ntotal = n(O2) + n(N2) = 0.785 mol
"P =~ \\cfrac {nRT}{V}=~ \\cfrac {0.785*8.31*298}{1}=~1944~ kPa"
1 atm = 101.3 kPa
X = 1944 kPa
X = 19.2 atm
Answer: [3] 19.2 atm
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