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4 May, 03:30

Use the balanced equation from number four above to determine the limiting reactant if we had a mixture of 5.0 moles of Fe and 4.0 moles of O2.

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  1. 4 May, 03:56
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    2Fe + 3O₂ → 2Fe₂O₃

    Limiting reactant: O₂

    2Fe + O₂ → 2FeO

    Limiting reactant: Fe

    Explanation:

    2Fe + 3O₂ → 2Fe₂O₃

    2Fe + O₂ → 2FeO

    These are the possible reactions:

    In first case, 2 moles of Fe need 3 mol of oyxgen to react

    If I have 5 moles of Fe, I will need (5.3) / 2 = 7.5 moles of O₂

    Then, the oxygen is my limiting (I only have 4 moles)

    3 moles of O₂ need 2 moles of Fe

    If I have 4 moles of O₂, I will need (4.2) / 3 = 2.66 moles (I have 5)

    Fe, is the reactant in excess.

    For second case, 2 moles of Fe need 1 mol of O₂, to react.

    If I have 5 moles of Fe, I will need (5.1) / 2 = 2.5 moles of O₂

    I have 4 moles of oxygen, so now it is my excess.

    1 mol of O₂ need 2 moles of Fe, to react

    If I have 4 moles of O₂, I will need the double of amount, 8 moles of Fe.

    I have 5 moles, then the Fe is my limtiing reactant.
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