Answer:
The empirical formula is C5H5O
The molecular formula = C10H10O2
Step-by-step explanation:
Step 1: Data given
Mass of the compound is 46.3 mg
The combustion of this compound produced 126 mg CO2 and 25.7 mg H2O
Step 2: Calculate moles CO2
Moles CO2 = 0.126 grams / 44.01 g/mol
Moles CO2 = 0.00286 moles
Step 3: Calculate moles C
In 1 mol CO2 we have 1 mol C
For 0.00286 moles CO2 we have 0.00286 moles C
Step 4: Calculate mass C
Mass C = moles C * molar mass C
Mass C = 0.00286 moles * 12.01 g/mol
Mass C = 0.0343 grams
Step 5: Calculate moles H2O
Moles H2O = 0.0257 grams / 18.02 g/mol
Moles H2O = 0.00143 moles
Step 6: Calculate moles H
In 1 mol H2O we have 2 moles H
In 0.00143 moles H2O we have 2*0.00143 = 0.00286 moles H
Step 7: Calculate mass H
Mass H = 0.00286 moles * 1.01 g/mol
Mass H = 0.00289 grams
Step 8: Calculate mass O
Mass O = total mass - mass C - mass H
Mass O = 0.0463 grams - 0.0343 - 0.00289
Mass O = 0.00911 grams
Step 9: Calculate moles O
Moles O = 0.00911 grams / 16.0 g/mol
Moles O = 0.000569 moles
Step 10: Calculate the mol ratio
We divide by the smallest amount of moles
C: 0.00286/ 0.000569 = 5
H: 0.00286 / 0.000569 = 5
O: 0.000569 / 0.000569 = 1
The empirical formula is C5H5O
The molecular mass of this formula is 81 g/mol
We have to multiply the empirical formula by n
n = 162 g/mol / 81 g/mol
n = 2
The molecular formula = 2*(C5H5O) = C10H10O2
The molecular formula = C10H10O2