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25 August, 00:31

how many grams of Al2O3 are produced when 60.2 g of Al reacts? express your answer with the appropriate units.

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  1. 25 August, 02:37
    0
    114 grams of Al2O3 will be produced

    Explanation:

    Step 1: Data given

    Mass of Al = 60.2 grams

    Molar mass of Al = 26.98 g/mol

    Molar mass Al2O3 = 101.96 g/mol

    Step 2: The balanced equation

    4Al + 3O2 → 2Al2O3

    Step 3: Calculate moles Al

    Moles Al = Mass Al / molar mass Al

    Moles Al = 60.2 grams / 26.98 g/mol

    Moles Al = 2.23 moles

    Step 4: Calculate moles Al2O3

    For 4 moles Al we need 3 moles O2 to produce 2 moles Al2O3

    For 2.23 moles Al we'll have 2.23 / 2 = 1.115 moles Al2O3

    Step 5: Calculate mass Al2O3

    Mass Al2O3 = moles Al2O3 * molar mass Al2O3

    Mass Al2O3 = 1.115 moles * 101.96 g/mol

    Mass Al2O3 = 113.7 grams (≈114 grams)

    114 grams of Al2O3 will be produced
  2. 25 August, 04:24
    0
    113.1 g of Al₂O₃ are produced

    Explanation:

    We firstly determine the reaction:

    4Al (s) + 3O₂ (g) → 2Al₂O₃ (s)

    If you see stoichiometry, we make react 4 moles of Al in order to produce 2 moles of Al₂O₃.

    Let's convert the mass of Al, to moles and then, we make a rule of three:

    60.2 g / 26.98 g/mol = 2.23 moles

    4 moles of Al can produce 2 moles of alumina

    Therefore, 2.23 moles will produce (2.23. 2) / 4 = 1.11 moles of Al₂O₃

    We convert the moles to mass: 1.11 mol. 101.96 g / 1mol = 113.1 g
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