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27 August, 23:32

What volumeof hydrogen at stp by the reaction of 67.3

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  1. 27 August, 23:40
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    Complete Question:

    What volume of hydrogen will be produced at STP by the reaction 67.3 g of magnesium with excess water according to the following reaction?

    Mg + 2H₂O - -> Mg (OH) ₂ + H₂

    Answer:

    62 L

    Solution:

    Step 1: Calculate Moles of Mg as;

    Moles = Mass / M. Mass

    Moles = 67.3 g / 24.30 g/mol

    Moles = 2.76 moles of Mg

    Step 2: Calculate Moles of H₂ as;

    According to balance chemical equation,

    1 mole of Mg produced = 1 mole of H₂

    So,

    2.76 moles of Mg will produce = X moles of H₂

    Solving for X,

    X = 2.76 mol * 1 mol / 1 mol

    X = 2.76 mol

    Step 3: Calculating volume of H₂,

    1 mole of ideal H₂ occupies = 22.4 L Volume at STP

    So,

    2.76 moles of H₂ will occupy = X L of H₂ at STP

    Solving for X,

    X = 2.76 mol * 22.4 L / 1 mol

    X = 61.82 L ≈ 62 L
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