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19 August, 13:01

A compound containing only C, H, and O, was extracted from the bark of the sassafras tree. The combustion of 57.9 mg produced 157 mg of CO2 and 32.2 mg of H2O. The molar mass of the compound was 162 g/mol. Determine its empirical and molecular formulas.

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  1. 19 August, 13:30
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    The empirical formula = C5H5O

    The molecular formula = C10H10O2

    Explanation:

    Step 1: Data given

    Mass of compound = 57.9 mg

    Mass of CO2 = 157 mg

    Mass of H2O = 32.2 mg

    Molar mass of 162 g/mol

    Step 2: Calculate the moles of CO2

    Moles CO2 = mass CO2 / molar mass CO2

    Moles CO2 = 0.157 grams / 44.01 g/mol

    moles CO2 = 0.00357 moles

    There is 1 mole of C in CO2 so moles of C in the compound = 0.00357 moles

    The mass of C = 0.00357 moles * 12 g/mol = 0.04284 grams

    Step 3: Calculate moles of H2O

    Moles H2O = 0.0322 grams / 18.02 g/mol

    moles H2O = 0.00179 moles

    There are 2 moles of H in H2O, so moles of H in the compound = 2*0.00179 = 0.00358 moles

    The mass of H = 0.00358 moles * 1.01 g/mol

    The mass of H = 0.00362 grams

    Step 4: Calculate the mass of oxygen

    mass of O = mass of compound - mass of H - mass of C

    mass of O = 0.0579 grams - 0.00362 grams - 0.04284 grams

    mass of O = 0.01144 grams

    Step 5: Calculate moles of oxygen

    moles O = 0.01144 grams / 16g/mol

    moles O = 0.000715 moles

    Step 6: Calculate molar ratio

    We divide by the smallest amount of moles

    C: 0.00357 moles : 0.000715 moles = 5

    H: 0.00358 moles : 0.000715 moles = 5

    0: 0.000715 moles : 0.000715 moles = 1

    The empirical formula is C5H5O

    The molar mass of the empirical formula = 81.05 g/mol

    Step 7: Calculate molecular mass

    molar mass / molar mass of empirical formula = 162 / 81.05 = 2

    We have to multiply the empirical formula by 2

    2 * (C5H5O) = C10H10O2

    The molecular formula = C10H10O2
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