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4 July, 23:22

Researchers used a combustion method to analyze a compound used as an antiknock additive in gasoline. A 9.394 mg sample of the compound yielded 31.154 mg of carbon dioxide and 7.977 mg of water in the combustion. Calculate the percent composition of the compound.

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  1. 4 July, 23:39
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    The percent composition of the compound is 90.5 % C and 9.5 % H

    Explanation:

    Step 1: Data given

    Mass of compound = 9.394 mg

    Mass of CO2 yielded = 31.154 mg

    Mass of H2O yielded = 7.977 mg

    Molar mass of CO2 = 44.01 g/mol

    Molar mass of H2O = 18.02 g/mol

    Step 2: Calculate moles CO2

    moles of CO2 = (0.031154 g / 44.01 g/mol) = 7.08 * 10^-4 mol CO2

    Step 3: Calculate moles C

    moles of C = moles of CO2 * (1 mol C / 1 mol CO2)

    moles of C = 7.08 * 10^-4 mol

    Step 4: Calculate moles H2O

    moles of H2O = (0.007977 g / 18.02 g/mol) = 4.43 * 10^-4 mol H2O

    Step 5: Calculate moles of H

    moles of H = moles of H2O * (2 mol H / 1 mol H2O)

    moles of H = 4.43 * 10^-4 * 2 = 8.86 * 10^-4 mol H

    Step 6: Calculate mass of C

    mass C = moles C * molar mass C

    mass C = 7.08 * 10^-4 mol*12.01 g/mol

    mass C = 0.0085 grams

    Step 7: Calculate mass of H

    mass H = moles H * molar mass H

    mass H = 8.86 * 10^-4 mol*1.01 g/mol

    mass H = 0.000894 grams

    Step 8: Calculate total mass of compound =

    0.0085 grams + 0.000894 grams = 0.009394 grams = 9.394 mg

    Step 9: Calculate the percent composition:

    % C = (8.50 mg / 9.394 mg) x 100 = 90.5%

    % H = (0.894 mg / 9.394 mg) x 100 = 9.5%

    The percent composition of the compound is 90.5 % C and 9.5 % H
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