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28 August, 21:47

Combustion analysis of toluene, a common organic solvent, gives 8.20 mg of co2 and 1.92 mg of h2o. if the compound contains only carbon and hydrogen, what is its empirical formula?

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  1. 29 August, 01:29
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    For the purpose of proper representation in this item, we let the number of moles of carbon in the compound be x, that of H is y. The equation of toluene now becomes,

    CxHy

    The combustion reaction is,

    CxHy + O2 - - > CO2 + H2O

    The equation presented above may not be balanced yet. Then, we determine the number of mmols of C, H, and O in the product using the given masses.

    (1) 8.20 mg CO2

    (8.2 mg CO2) (1 mmol CO2/44 mg CO2) = 0.186 mmol CO2

    which means,

    0.186 mmol C

    0.373 mmol O

    (2) 1.92 mg H2O

    (1.92 mg H2O) (1 mmol H2O/18 mg H2O) = 0.107 mmol H2O

    which means

    0.2133 mmol H

    0.107 mmol O

    Thus, the equation for toluene is,

    C (0.186) H (0.2133)

    Dividing the numbers by the lesser value,

    CH (8/7)

    To eliminate the fraction, we multiply by the denominator. Thus, the final answer would be,

    C7H8
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