A gaseous compound is composed of 85.7% by mass carbon and 14.3% by mass hydrogen. Its density is 2.5g L−1 and one mole of the gas occupies 44.8L of space at a particular temperature and pressure. Determine the molecular formula of the compound.
A
C2H4
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B
C2H2
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C
C4H8
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D
C4H10
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Solution
The correct option is CC4H8 Since, we have the volume of 1mol of gas and the density in g L−1, looking at the units, the molecular mass will be given by d×V 2.5×44.8g mol−1=112g mol−1
Now, Empirical ratio for C and H as per their composition is, 85.712:14.31=7.14:14.3=1:2 ∴ Empirical Formula is CH2
So, Molecular formula will be (CH2)n, where n=11212+2=8
Molecular formula is C8H16.