Empirical formula is the simplest ratio of whole numbers of components in a compound in 100 g of compound C H O mass 25.5 g 6.40 g 68.1 g number of moles 25.5 g/12 g/mol 6.40 g/ 1 g/mol 68.1 g/ 16 g/mol = 2.13 mol = 6.40 mol = 4.26 mol divide by least number of moles 2.13/2.13 = 1 6.40/2.13 = 3.0 4.26/2.13 = 2.0 all rounded off C - 1 H - 3 O - 2
