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15 November, 15:27

what mass of magnesium is required to react with excess nitrogen to produce 0.500 mol magnesium nitrade

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Answers (2)
  1. 15 November, 17:07
    0
    36.46 g

    Explanation:

    Let's consider the following balanced equation.

    3 Mg + N₂ → Mg₃N₂

    The molar ratio of Mg to Mg₃N₂ is 3:1. The moles of Mg that produce 0.500 moles of Mg₃N₂ are:

    0.500 mol Mg₃N₂ * (3 mol Mg / 1 mol Mg₃N₂) = 1.500 mol

    The molar mass of Mg is 24.305 g/mol. The mass corresponding to 1.500 moles is:

    1.500 mol * (24.305 g/mol) = 36.46 g
  2. 15 November, 18:22
    0
    We need 36.45 grams of Mg

    Explanation:

    Step 1: Data given

    Moles of Mg3N2 produced = 0.500 moles

    Molar mass of Mg = 24.3 g/mol

    Molar mass of Mg3N2 = 256.41 g/mol

    Step 2: The balanced equation

    3Mg + N2 → Mg3N2

    Step 3: Calculate moles of Mg

    For 3 moles of Mg we need 1 mol of N2 to produce 1 mol of Mg3N2

    For 0.500 moles Mg3N2 we need 3*0.500 moles = 1.500 moles of Mg

    Step 4: Calculate mass of Mg

    Mass Mg = moles Mg * molar mass Mg

    Mass Mg = 1.500 moles * 24.3 g/mol

    Mass Mg = 36.45 grams
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