A hydrocarbon Y on combustion gives 0.352g of carbon(iv)oxide and 0.18g of water. Calculate the empirical formula of the compound and If the relative molecular mass of Y is 58g, determine the molecular formula of Y.?

...Y + O2 ==> CO2 + H2O
...................0.352 g + 0.18 g
g C in Y is 0.352 x (12/44) = 0.096
g H in Y is 0.18 x (2/18)) = 0.02

mols C in Y = 0.096/12 = 0.008
mols H in Y = 0.02/1 = 0.02
Now find the ratio. The easy way is to divide both numbers by the smallest number; i.e.,
C = 0.008/0.008 = 1
H = 0.02/0.008 = 2.5
Make whole numbers which will be C = 2 and H = 5 so the empirical formula is C2H5. The empirical formula will be (C2H5)x so x is a multiple of the empirical formula. The empirical formula is 29 so 29*what number = 58.
The molecular formula is (C2H5)2 or C4H10. Is the molar mass 59?
4*12 = 48 and 10*1 = 10
48+10 = 58. Bingo.

Mega Thanks

C4H10