Exercise 11.76 A mixture of helium, nitrogen, and oxygen has a total pressure of
ID: 587068 • Letter: E
Question
Exercise 11.76
A mixture of helium, nitrogen, and oxygen has a total pressure of 755 mmHg . The partial pressures of helium and nitrogen are 241 mmHg and 194 mmHg , respectively.
Part A
What is the partial pressure of oxygen in the mixture?
Part B
The hydrogen gas formed in a chemical reaction is collected over water at 30 C at a total pressure of 730 mmHg .
What is the partial pressure of the hydrogen gas collected in this way?
Exercise 11.78 - Part C
The oxygen gas emitted from an aquatic plant during photosynthesis is collected over water at a temperature of 25 C and a total pressure of 748 torr
Part C
What is the partial pressure of the oxygen gas?
Exercise 11.104---- Part D
A gaseous compound containing hydrogen and carbon is decomposed and found to contain 85.63 % C and 14.37 % H by mass. The mass of 258 mL of the gas, measured at STP, is found to be 0.646 g.
Part D
What is the molecular formula of the compound?
Express your answer as a chemical formula.
.
Explanation / Answer
A mixture of helium, nitrogen, and oxygen has a total pressure of 755 mmHg . The partial pressures of helium and nitrogen are 241 mmHg and 194 mmHg , respectively.
A)
P-O2 --> from
Ptotal = Pgases
755 = 241+194 + P-O2
P-O2 = 755 -( 241+194)
P-O2 = 320 mm Hg
b)
Ptotal = PGas + Pvapor
730 = PGas + PVapor
Pvapr (30°C) = 31.8
Pgas = 730-31.8 = 698.2 torr
C)
Pgas = Ptotal - Pvapor
Pgas = 748 - 23.8 = 724.2 torr
D)
find MW of molecule:
1 mol at STP = 22.4 L
x mol = 0.258
x = 0.258/22.4
x = 0.01151 mol of species
MW empirical:
mol of C = 85.63/12 = 7.14
mol of H = 14.37/1 = 14.37
C::H ratio --> 1:2 --> Empricial -->C1H2
MW of empirical = 12+2 = 14
MW formula = mass/mol = 0.646 / 0.01151 = 56.125
ratio = 56.125/14 = 4x
CH2 x 4 = C4H8
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