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17 April, 10:45

a 1.32-g sample of aluminum reacted with 1.174 g oxygen to form aluminum oxide. Determine the empirical formula of the aluminum oxide.

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  1. 17 April, 11:02
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    Al2O3

    Explanation:

    Moles of Aluminium = 1.32 g/27 g/mole

    = 0.0489 moles

    Moles of oxygen = 1.174 g / 16 g/mole

    = 0.0734 moles

    Mole Ratio = 1 : 0.0734/0.0489

    = 1 : 1.5

    We multiply by 2 to make them whole numbers;

    = (1 : 1.5) 2

    = 2 : 3

    Therefore;

    The empirical formula is Al2O3
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