Answer:
2.53g/mol
Step-by-step explanation:
First, let us calculate the rate of effusion of the two gas. This is illustrated below:
For the unknown gas:
Volume = 7L
Time = 109secs
R1 = volume /time
R1 = 7/109
R1 = 0.064L/s
For O2:
Volume = 7L
Time = 380secs
R2 = volume /time
R2 = 7/380
R2 = 0.018L/s
Now, we can calculate the molar mass of the unknown gas using the Graham's law of diffusion equation:
R1/R2 = √(M2/M1)
R1 ( for the unknown gas) = 0.064L/s
M1( for the unknown gas) =?
R2 (for O2) = 0.018L/s
M2 (for O2) = 16x2 = 32g/mol
R1/R2 = √(M2/M1)
0.064/0.018 = √(32/M1)
Take the square of both side
(0.064/0.018)^2 = 32/M1
Cross multiply to express in linear form
(0.064/0.018)^2 x M1 = 32
Divide both side by (0.064/0.018)^2
M1 = 32/ (0.064/0.018)^2
M1 = 2.53g/mol
The molar mass of the unknown gas is 2.53g/mol