A 7.96mg sample of a compound containing the elements C, H, and S is burned in oxygen and found to form 16.65mg of CO2. The sulfur in 4.31mg of the compound is converted into sulfate by a series of reactions, and precipitated as Ba(SO4). The Ba(SO4) was found to have a mass of 11.96mg. The molecular weight of the compound was found to be 168g/mol. Using this data, what is the molecular formula of the C, H, S compound?
Okay, so that is the problem and I know the first thing I need is to find the mass of each C, H, and S in the compound in order to get my empirical formula. So i got the mass of S as 4.31mg because it's stated in the problem, but I cannot seem to figure out how to get the masses of C and H. if i got those I know how to solve from there.
Any help would be appreciated, thanks.