A gas is found to have a density of "1.80 g/L"1.80 g/L at "76 cm Hg"76 cm Hg and 27^@ "C"27∘C. The gas is?
a)Oxygen b)Carbon Dioxide c)Ammonia d)Sulphur dioxide
a)Oxygen b)Carbon Dioxide c)Ammonia d)Sulphur dioxide
1 Answer
I'd go for (b)
Explanation:
The idea here is that you need to figure out the molar mass of the gas by using its density under the given conditions for pressure and temperature.
Your tool of choice will be the ideal gas law equation
color(blue)(ul(color(black)(PV = nRT)))
Here
P is the pressure of the gasV is the volume it occupiesn is the number of moles of gas present in the sampleR is the universal gas constant, equal to0.0821("atm L")/("mol K") T is the absolute temperature of the gas
Start by converting the pressure of the gas to atmospheres and the temperature to Kelvin. You will have
76 color(red)(cancel(color(black)("cmHg"))) * "1.0 atm"/(76 color(red)(cancel(color(black)("cmHg")))) = "1.0 atm"
and
T["K"] = 27^@"C" + 273.15 = "300.15 K"
Now, you know that the density of the gas,
color(blue)(rho = m / V)
The number of moles of gas can be expressed by using the mass of the sample and the molar mass of the gas, let's say
n = m/M_M
Plug this into the ideal gas law equation to get
PV = m/M_M * RT
Rearrange to isolate the molar mass of the gas
M_M = color(blue)(m/V) * (RT)/P
This is equivalent to
M_M = color(blue)(rho) * (RT)/P
Plug in your values to find
M_M = "1.80 g" color(red)(cancel(color(black)("L"^(-1)))) * (0.0821(color(red)(cancel(color(black)("atm"))) * color(red)(cancel(color(black)("L"))))/("mol" * color(red)(cancel(color(black)("K")))) * 300.15color(red)(cancel(color(black)("K"))) )/(1.0color(red)(cancel(color(black)("atm"))))
M_M = "44 g mol"^(-1) -> rounded to two sig figs
The closest match is carbon dioxide, which has a molar mass of
M_ ("M CO"_ 2) = "44.01 g mol"^(-1)
